Multi-View Deep Learning for Imaging Atmospheric Cherenkov Telescopes

Fuente: arXiv
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Hauptverfasser: Warnhofer, Hannes, Spencer, Samuel T., Mitchell, Alison M. W.
Format: Preprint
Veröffentlicht: 2024
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author Warnhofer, Hannes
Spencer, Samuel T.
Mitchell, Alison M. W.
author_facet Warnhofer, Hannes
Spencer, Samuel T.
Mitchell, Alison M. W.
contents This research note concerns the application of deep-learning-based multi-view-imaging techniques to data from the H.E.S.S. Imaging Atmospheric Cherenkov Telescope array. We find that the earlier the fusion of layer information from different views takes place in the neural network, the better our model performs with this data. Our analysis shows that the point in the network where the information from the different views is combined is far more important for the model performance than the method used to combine the information.
format Preprint
id arxiv_https___arxiv_org_abs_2403_18516
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Multi-View Deep Learning for Imaging Atmospheric Cherenkov Telescopes
Warnhofer, Hannes
Spencer, Samuel T.
Mitchell, Alison M. W.
Instrumentation and Methods for Astrophysics
High Energy Astrophysical Phenomena
This research note concerns the application of deep-learning-based multi-view-imaging techniques to data from the H.E.S.S. Imaging Atmospheric Cherenkov Telescope array. We find that the earlier the fusion of layer information from different views takes place in the neural network, the better our model performs with this data. Our analysis shows that the point in the network where the information from the different views is combined is far more important for the model performance than the method used to combine the information.
title Multi-View Deep Learning for Imaging Atmospheric Cherenkov Telescopes
topic Instrumentation and Methods for Astrophysics
High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2403.18516