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Charged pion energy reconstruction in HGCAL TB prototype using graph neural networks

The CMS Collaboration is preparing to replace its endcap calorimeters for the HL-LHC era with a high-granularity calorimeter (HGCAL). The HGCAL will have fine segmentation in both the transverse and longitudinal directions, and will be the first such calorimeter specifically optimized for particle-f...

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Autor principal: Alpana, Alpana
Lenguaje:eng
Publicado: 2023
Materias:
Acceso en línea:http://cds.cern.ch/record/2875722
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author Alpana, Alpana
author_facet Alpana, Alpana
author_sort Alpana, Alpana
collection CERN
description The CMS Collaboration is preparing to replace its endcap calorimeters for the HL-LHC era with a high-granularity calorimeter (HGCAL). The HGCAL will have fine segmentation in both the transverse and longitudinal directions, and will be the first such calorimeter specifically optimized for particle-flow reconstruction to operate at a colliding-beam experiment. The proposed design uses silicon sensors as active material in the regions of highest radiation and plastic scintillator tiles equipped with on-tile silicon photomultipliers (SiPMs), in the less-challenging regions. The unprecedented transverse and longitudinal segmentation facilitates particle identification, particle-flow reconstruction and pileup rejection.A prototype of the silicon-based electromagnetic and hadronic sections along a section of the CALICE AHCAL prototype was exposed to muons, electrons and charged pions in beam test experiments at the H2 beamline at the CERN SPS in October 2018 to study the performance of the detector and its readout electronic components. Given the complex nature of hadronic showers, energy reconstruction is expected to benefit from detailed information of energy deposits and its spatial distribution of the individual showers in the detector, which can be well utilized by advanced machine learning algorithms. Here we present reconstruction of hadronic showers created by charged pions of momenta 20-300 GeV using a dynamic reduction network (DRN) based on graph neural networks (GNNs).
id cern-2875722
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2023
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spelling cern-28757222023-10-16T18:55:08Zhttp://cds.cern.ch/record/2875722engAlpana, AlpanaCharged pion energy reconstruction in HGCAL TB prototype using graph neural networksDetectors and Experimental TechniquesThe CMS Collaboration is preparing to replace its endcap calorimeters for the HL-LHC era with a high-granularity calorimeter (HGCAL). The HGCAL will have fine segmentation in both the transverse and longitudinal directions, and will be the first such calorimeter specifically optimized for particle-flow reconstruction to operate at a colliding-beam experiment. The proposed design uses silicon sensors as active material in the regions of highest radiation and plastic scintillator tiles equipped with on-tile silicon photomultipliers (SiPMs), in the less-challenging regions. The unprecedented transverse and longitudinal segmentation facilitates particle identification, particle-flow reconstruction and pileup rejection.A prototype of the silicon-based electromagnetic and hadronic sections along a section of the CALICE AHCAL prototype was exposed to muons, electrons and charged pions in beam test experiments at the H2 beamline at the CERN SPS in October 2018 to study the performance of the detector and its readout electronic components. Given the complex nature of hadronic showers, energy reconstruction is expected to benefit from detailed information of energy deposits and its spatial distribution of the individual showers in the detector, which can be well utilized by advanced machine learning algorithms. Here we present reconstruction of hadronic showers created by charged pions of momenta 20-300 GeV using a dynamic reduction network (DRN) based on graph neural networks (GNNs).CMS-CR-2023-071oai:cds.cern.ch:28757222023-07-08
spellingShingle Detectors and Experimental Techniques
Alpana, Alpana
Charged pion energy reconstruction in HGCAL TB prototype using graph neural networks
title Charged pion energy reconstruction in HGCAL TB prototype using graph neural networks
title_full Charged pion energy reconstruction in HGCAL TB prototype using graph neural networks
title_fullStr Charged pion energy reconstruction in HGCAL TB prototype using graph neural networks
title_full_unstemmed Charged pion energy reconstruction in HGCAL TB prototype using graph neural networks
title_short Charged pion energy reconstruction in HGCAL TB prototype using graph neural networks
title_sort charged pion energy reconstruction in hgcal tb prototype using graph neural networks
topic Detectors and Experimental Techniques
url http://cds.cern.ch/record/2875722
work_keys_str_mv AT alpanaalpana chargedpionenergyreconstructioninhgcaltbprototypeusinggraphneuralnetworks