Cargando…

Separation of two overlapped electromagnetic or electromagnetic-hadronic showers in CALICE highly granular physics calorimeter prototypes using Pandora, Garlic and Arbor Particle Flow Algorithms

CALICE collaboration is developing highly granular calorimetry for the future ILD detector. Usage of Particle Flow Algorithm (PFA) for individual reconstruction of particles in jets provides the best jet energy resolution. For high jet energies (typically above 70 - 100 GeV), particles start overlap...

Descripción completa

Detalles Bibliográficos
Autor principal: CALICE Collaboration
Lenguaje:eng
Publicado: 2017
Materias:
Acceso en línea:http://cds.cern.ch/record/2669484
_version_ 1780962220559040512
author CALICE Collaboration
author_facet CALICE Collaboration
author_sort CALICE Collaboration
collection CERN
description CALICE collaboration is developing highly granular calorimetry for the future ILD detector. Usage of Particle Flow Algorithm (PFA) for individual reconstruction of particles in jets provides the best jet energy resolution. For high jet energies (typically above 70 - 100 GeV), particles start overlapping in the calorimeter, causing confusion, and recognition of individual particles becomes complicated. This is the natural limit for PFA at high energies. In this work we are presenting the results on the separation of - 2 overlapped electromagnetic showers in the CALICE silicon-tungsten electromagnetic calorimeter (SiW ECAL) physics prototype; - electromagnetic-hadron showers in the physics prototypes of SiW ECAL and the analogue scintillator-steel hadronic calorimeter (AHCAL); - photon-photon and photon-hadron showers in ILD Monte-Carlo (MC) simulation with $5 \times 5$ mm$^2$ and $2.5 \times 2.5$ mm$^2$ ECAL cell size for ILD baseline models with AHCAL or semi-digital hadronic calorimeter (SDHCAL). Physics prototype data were collected during beam tests (TB) in CERN (2007) and FermiLab (2011). Results are compared with Monte-Carlo simulations. Three different reconstruction algorithms are used:Pandora, Garlic and Arbor.
id oai-inspirehep.net-1712881
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2017
record_format invenio
spelling oai-inspirehep.net-17128812019-09-30T06:29:59Zhttp://cds.cern.ch/record/2669484engCALICE CollaborationSeparation of two overlapped electromagnetic or electromagnetic-hadronic showers in CALICE highly granular physics calorimeter prototypes using Pandora, Garlic and Arbor Particle Flow AlgorithmsDetectors and Experimental TechniquesDetectors and Experimental TechniquesCALICE collaboration is developing highly granular calorimetry for the future ILD detector. Usage of Particle Flow Algorithm (PFA) for individual reconstruction of particles in jets provides the best jet energy resolution. For high jet energies (typically above 70 - 100 GeV), particles start overlapping in the calorimeter, causing confusion, and recognition of individual particles becomes complicated. This is the natural limit for PFA at high energies. In this work we are presenting the results on the separation of - 2 overlapped electromagnetic showers in the CALICE silicon-tungsten electromagnetic calorimeter (SiW ECAL) physics prototype; - electromagnetic-hadron showers in the physics prototypes of SiW ECAL and the analogue scintillator-steel hadronic calorimeter (AHCAL); - photon-photon and photon-hadron showers in ILD Monte-Carlo (MC) simulation with $5 \times 5$ mm$^2$ and $2.5 \times 2.5$ mm$^2$ ECAL cell size for ILD baseline models with AHCAL or semi-digital hadronic calorimeter (SDHCAL). Physics prototype data were collected during beam tests (TB) in CERN (2007) and FermiLab (2011). Results are compared with Monte-Carlo simulations. Three different reconstruction algorithms are used:Pandora, Garlic and Arbor.CALICE Analysis Note CAN-057CALICE-CAN-2017-001oai:inspirehep.net:17128812017
spellingShingle Detectors and Experimental Techniques
Detectors and Experimental Techniques
CALICE Collaboration
Separation of two overlapped electromagnetic or electromagnetic-hadronic showers in CALICE highly granular physics calorimeter prototypes using Pandora, Garlic and Arbor Particle Flow Algorithms
title Separation of two overlapped electromagnetic or electromagnetic-hadronic showers in CALICE highly granular physics calorimeter prototypes using Pandora, Garlic and Arbor Particle Flow Algorithms
title_full Separation of two overlapped electromagnetic or electromagnetic-hadronic showers in CALICE highly granular physics calorimeter prototypes using Pandora, Garlic and Arbor Particle Flow Algorithms
title_fullStr Separation of two overlapped electromagnetic or electromagnetic-hadronic showers in CALICE highly granular physics calorimeter prototypes using Pandora, Garlic and Arbor Particle Flow Algorithms
title_full_unstemmed Separation of two overlapped electromagnetic or electromagnetic-hadronic showers in CALICE highly granular physics calorimeter prototypes using Pandora, Garlic and Arbor Particle Flow Algorithms
title_short Separation of two overlapped electromagnetic or electromagnetic-hadronic showers in CALICE highly granular physics calorimeter prototypes using Pandora, Garlic and Arbor Particle Flow Algorithms
title_sort separation of two overlapped electromagnetic or electromagnetic-hadronic showers in calice highly granular physics calorimeter prototypes using pandora, garlic and arbor particle flow algorithms
topic Detectors and Experimental Techniques
Detectors and Experimental Techniques
url http://cds.cern.ch/record/2669484
work_keys_str_mv AT calicecollaboration separationoftwooverlappedelectromagneticorelectromagnetichadronicshowersincalicehighlygranularphysicscalorimeterprototypesusingpandoragarlicandarborparticleflowalgorithms