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Transferability of Deep Learning Models in Searches for New Physics at Colliders

High Energy Physics - Phenomenology 2020-03-04 v2 High Energy Physics - Experiment Computational Physics

Abstract

In this work we assess the transferability of deep learning models to detect beyond the standard model signals. For this we trained Deep Neural Networks on three different signal models: tZtZ production via a flavour changing neutral current, pair-production of vector-like TT-quarks via standard model gluon fusion and via a heavy gluon decay in a grid of 3 mass points: 1, 1.2 and 1.4 TeV. These networks were trained with ttˉt\bar{t}, ZZ+jets and dibosons as the main backgrounds. Limits were derived for each signal benchmark using the inference of networks trained on each signal independently, so that we can quantify the degradation of their discriminative power across different signal processes. We determine that the limits are compatible within uncertainties for all networks trained on signals with vector-like TT-quarks, whether they are produced via heavy gluon decay or standard model gluon fusion. The network trained on flavour changing neutral current signal, while struggling the most on the other signals, still produce reasonable limits. These results indicate that deep learning models are capable of providing sensitivity in the search for new physics even if it manifests itself in models not assumed during training.

Keywords

Cite

@article{arxiv.1912.04220,
  title  = {Transferability of Deep Learning Models in Searches for New Physics at Colliders},
  author = {M. Crispim Romao and N. F. Castro and R. Pedro and T. Vale},
  journal= {arXiv preprint arXiv:1912.04220},
  year   = {2020}
}

Comments

7 pages, 7 figures, accepted for publication in PRD