What's anomalous in LHC jets?

Author:

Buss Thorsten1,Dillon Barry M.1,Finke Thorben2,Krämer Michael2,Morandini Alessandro2,Mück Alexander2,Oleksiyuk Ivan2,Plehn Tilman1

Affiliation:

1. Heidelberg University

2. RWTH Aachen University

Abstract

Searches for anomalies are a significant motivation for the LHC and help define key analysis steps, including triggers. We discuss specific examples how LHC anomalies can be defined through probability density estimates, evaluated in a physics space or in an appropriate neural network latent space, and discuss the model-dependence in choosing an appropriate data parameterisation. We illustrate this for classical k-means clustering, a Dirichlet variational autoencoder, and invertible neural networks. For two especially challenging scenarios of jets from a dark sector we evaluate the strengths and limitations of each method.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Stichting SciPost

Subject

General Physics and Astronomy

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