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CaloGAN: Simulating 3D high energy particle showers in multilayer electromagnetic calorimeters with generative adversarial networks

M. PaganiniLuke de OliveiraBenjamin Nachman

Abstract

The precise modeling of subatomic particle interactions and propagation through matter is paramount for the advancement of nuclear and particle physics searches and precision measurements. The most computationally expensive step in the simulation pipeline of a typical experiment at the Large Hadron Collider (LHC) is the detailed modeling of the full complexity of physics processes that govern the motion and evolution of particle showers inside calorimeters. We introduce CaloGAN, a new fast simulation technique based on generative adversarial networks (GANs). We apply these neural networks to the modeling of electromagnetic showers in a longitudinally segmented calorimeter and achieve speedup factors comparable to or better than existing full simulation techniques on CPU ($100\ifmmode\times\else\texttimes\fi{}--1000\ifmmode\times\else\texttimes\fi{}$) and even faster on GPU (up to $\ensuremath{\sim}{10}^{5}\ifmmode\times\else\texttimes\fi{}$). There are still challenges for achieving precision across the entire phase space, but our solution can reproduce a variety of geometric shower shape properties of photons, positrons, and charged pions. This represents a significant stepping stone toward a full neural network-based detector simulation that could save significant computing time and enable many analyses now and in the future.

Particle physics theoretical and experimental studiesAstrophysics and Cosmic PhenomenaHigh-Energy Particle Collisions ResearchPhysicsPipeline (software)Large Hadron ColliderSubatomic particleCalorimeter (particle physics)Particle physicsPhotonDetectorComputer scienceComputational physics

Funding

  • U.S. Department of Energy
Citations
380
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81.72
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34
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Cited by
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