English

Deep learning in color: towards automated quark/gluon jet discrimination

High Energy Physics - Phenomenology 2018-09-06 v3 Machine Learning

Abstract

Artificial intelligence offers the potential to automate challenging data-processing tasks in collider physics. To establish its prospects, we explore to what extent deep learning with convolutional neural networks can discriminate quark and gluon jets better than observables designed by physicists. Our approach builds upon the paradigm that a jet can be treated as an image, with intensity given by the local calorimeter deposits. We supplement this construction by adding color to the images, with red, green and blue intensities given by the transverse momentum in charged particles, transverse momentum in neutral particles, and pixel-level charged particle counts. Overall, the deep networks match or outperform traditional jet variables. We also find that, while various simulations produce different quark and gluon jets, the neural networks are surprisingly insensitive to these differences, similar to traditional observables. This suggests that the networks can extract robust physical information from imperfect simulations.

Keywords

Cite

@article{arxiv.1612.01551,
  title  = {Deep learning in color: towards automated quark/gluon jet discrimination},
  author = {Patrick T. Komiske and Eric M. Metodiev and Matthew D. Schwartz},
  journal= {arXiv preprint arXiv:1612.01551},
  year   = {2018}
}

Comments

23 pages, 9 figures, updated to JHEP version, added table of contents, minor typos fixed