The reconstruction of electrons and photons in CMS depends on topological clustering of the energy deposited by an incident particle in different crystals of the electromagnetic calorimeter (ECAL). These clusters are formed by aggregating neighbouring crystals according to the expected topology of an electromagnetic shower in the ECAL. The presence of upstream material (beam pipe, tracker and support structures) causes electrons and photons to start showering before reaching the calorimeter. This effect, combined with the 3.8T CMS magnetic field, leads to energy being spread in several clusters around the primary one. It is essential to recover the energy contained in these satellite clusters in order to achieve the best possible energy res...
The CMS electromagnetic calorimeter (ECAL) is a high-resolution, hermetic, and homogeneous calorimet...
The Compact Muon Solenoid (CMS) experiment features an electromagnetic calorimeter (ECAL) composed o...
In run 4 of the LHC, the extreme high luminosity is expected to generate an enormous pileup of up to...
The reconstruction of electrons and photons in CMS depends on topological clustering of the energy d...
International audienceThe reconstruction of electrons and photons in CMS depends on the topological ...
The electromagnetic calorimeter (ECAL) of the Compact Muon Solenoid (CMS) Experiment is crucial for ...
The Compact Muon Solenoid (CMS) detector is one of two general-purpose detectors on the energy front...
It is clear from evidence such as rotational curves and cosmic microwave background measurements tha...
The CMS electromagnetic calorimeter (ECAL) is described as well as its expected performance and rece...
The electromagnetic calorimeter (ECAL) of the Compact Muon Solenoid (CMS) Experiment, based on lead ...
Many physics analyses using the Compact Muon Solenoid (CMS) detector at the LHC require accurate, hi...
We present a new approach to identifcation of boosted neutral particles using Electromagnetic Calori...
A description is provided of the performance of the CMS detector for photon reconstruction and ident...
A novel technique based on machine learning is introduced to reconstruct the decays of highly Lorent...
The calibration of electromagnetic clusters is one of the key issues of ATLAS (and the LHC) in 2007....
The CMS electromagnetic calorimeter (ECAL) is a high-resolution, hermetic, and homogeneous calorimet...
The Compact Muon Solenoid (CMS) experiment features an electromagnetic calorimeter (ECAL) composed o...
In run 4 of the LHC, the extreme high luminosity is expected to generate an enormous pileup of up to...
The reconstruction of electrons and photons in CMS depends on topological clustering of the energy d...
International audienceThe reconstruction of electrons and photons in CMS depends on the topological ...
The electromagnetic calorimeter (ECAL) of the Compact Muon Solenoid (CMS) Experiment is crucial for ...
The Compact Muon Solenoid (CMS) detector is one of two general-purpose detectors on the energy front...
It is clear from evidence such as rotational curves and cosmic microwave background measurements tha...
The CMS electromagnetic calorimeter (ECAL) is described as well as its expected performance and rece...
The electromagnetic calorimeter (ECAL) of the Compact Muon Solenoid (CMS) Experiment, based on lead ...
Many physics analyses using the Compact Muon Solenoid (CMS) detector at the LHC require accurate, hi...
We present a new approach to identifcation of boosted neutral particles using Electromagnetic Calori...
A description is provided of the performance of the CMS detector for photon reconstruction and ident...
A novel technique based on machine learning is introduced to reconstruct the decays of highly Lorent...
The calibration of electromagnetic clusters is one of the key issues of ATLAS (and the LHC) in 2007....
The CMS electromagnetic calorimeter (ECAL) is a high-resolution, hermetic, and homogeneous calorimet...
The Compact Muon Solenoid (CMS) experiment features an electromagnetic calorimeter (ECAL) composed o...
In run 4 of the LHC, the extreme high luminosity is expected to generate an enormous pileup of up to...