Reconstruction of stereoscopic CTA events using deep learning with CTLearn
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| Publication date | 18-03-2022 |
| Journal | Proceedings of Science |
| Event | 37th International Cosmic Ray Conference, ICRC 2021 |
| Article number | 730 |
| Volume | Issue number | 395 |
| Number of pages | 15 |
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| Abstract |
The Cherenkov Telescope Array (CTA), conceived as an array of tens of imaging atmospheric Cherenkov telescopes (IACTs), is an international project for a next-generation ground-based gamma-ray observatory, aiming to improve on the sensitivity of current-generation instruments a factor of five to ten and provide energy coverage from 20 GeV to more than 300 TeV. Arrays of IACTs probe the very-high-energy gamma-ray sky. Their working principle consists of the simultaneous observation of air showers initiated by the interaction of very-high-energy gamma rays and cosmic rays with the atmosphere. Cherenkov photons induced by a given shower are focused onto the camera plane of the telescopes in the array, producing a multi-stereoscopic record of the event. This image contains the longitudinal development of the air shower, together with its spatial, temporal, and calorimetric information. The properties of the originating very-high-energy particle (type, energy, and incoming direction) can be inferred from those images by reconstructing the full event using machine learning techniques. In this contribution, we present a purely deep-learning driven, full-event reconstruction of simulated, stereoscopic IACT events using CTLearn. CTLearn is a package that includes modules for loading and manipulating IACT data and for running deep learning models, using pixel-wise camera data as input.
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| Document type | Article |
| Note | Proceedings of 37th International Cosmic Ray Conference (ICRC2021) |
| Language | English |
| Published at | https://doi.org/10.22323/1.395.0730 |
| Other links | https://www.scopus.com/pages/publications/85145019293 |
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Reconstruction of stereoscopic CTA events using deep learning with CTLearn
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