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A first-level calorimeter trigger for the ATLAS experiment

In the RD27 collaboration the authors have carried out system studies on the implementation of the first level calorimeter trigger processor system for the ATLAS experiment to be mounted at the Large Hadron Collider (LHC) at CERN. A demonstrator trigger system operated successfully with the RD3 and...

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Autores principales: Perera, V., Edwards, J E G, Gee, N, Gillman, A R, Hatley, R, Leake, J W, Quinton, S, Shah, T P, Eisenhandler, Eric F, Landon, M, Brawn, I P, Carney, R E, Garvey, J, Staley, R J, Watson, A T, Ellis, Nick
Lenguaje:eng
Publicado: 1995
Materias:
Acceso en línea:https://dx.doi.org/10.1109/23.467782
http://cds.cern.ch/record/289224
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author Perera, V.
Edwards, J E G
Gee, N
Gillman, A R
Hatley, R
Leake, J W
Quinton, S
Shah, T P
Eisenhandler, Eric F
Landon, M
Brawn, I P
Carney, R E
Garvey, J
Staley, R J
Watson, A T
Ellis, Nick
author_facet Perera, V.
Edwards, J E G
Gee, N
Gillman, A R
Hatley, R
Leake, J W
Quinton, S
Shah, T P
Eisenhandler, Eric F
Landon, M
Brawn, I P
Carney, R E
Garvey, J
Staley, R J
Watson, A T
Ellis, Nick
author_sort Perera, V.
collection CERN
description In the RD27 collaboration the authors have carried out system studies on the implementation of the first level calorimeter trigger processor system for the ATLAS experiment to be mounted at the Large Hadron Collider (LHC) at CERN. A demonstrator trigger system operated successfully with the RD3 and RD33 calorimeters at the full 40 MHz LHC bunch crossing (BC) rate. The prototype application-specific integrated circuits (ASICs) in this system each processed data from only a single trigger cell and its environment, which would lead to an extremely large system for ATLAS. Using eight-bit parallel data even the use of ASICs, processing multiple trigger cells would demand unacceptably large numbers of input pins and module connections. Initial studies of this I/O problem produced a solution based on asynchronous transmission of zero-suppressed and BC-tagged data on 160 Mbit/s serial links. This approach appeared to be feasible but would have introduced additional latency of about 20 BCs. Further studies have led to the design of a fully-synchronous calorimeter trigger processor system using commercial high-speed optical links. The links will terminate in multi-chip modules (MCMs) incorporating custom-designed integrated optics, and the trigger algorithms will be implemented in ASICs.
id cern-289224
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 1995
record_format invenio
spelling cern-2892242019-09-30T06:29:59Zdoi:10.1109/23.467782http://cds.cern.ch/record/289224engPerera, V.Edwards, J E GGee, NGillman, A RHatley, RLeake, J WQuinton, SShah, T PEisenhandler, Eric FLandon, MBrawn, I PCarney, R EGarvey, JStaley, R JWatson, A TEllis, NickA first-level calorimeter trigger for the ATLAS experimentDetectors and Experimental TechniquesIn the RD27 collaboration the authors have carried out system studies on the implementation of the first level calorimeter trigger processor system for the ATLAS experiment to be mounted at the Large Hadron Collider (LHC) at CERN. A demonstrator trigger system operated successfully with the RD3 and RD33 calorimeters at the full 40 MHz LHC bunch crossing (BC) rate. The prototype application-specific integrated circuits (ASICs) in this system each processed data from only a single trigger cell and its environment, which would lead to an extremely large system for ATLAS. Using eight-bit parallel data even the use of ASICs, processing multiple trigger cells would demand unacceptably large numbers of input pins and module connections. Initial studies of this I/O problem produced a solution based on asynchronous transmission of zero-suppressed and BC-tagged data on 160 Mbit/s serial links. This approach appeared to be feasible but would have introduced additional latency of about 20 BCs. Further studies have led to the design of a fully-synchronous calorimeter trigger processor system using commercial high-speed optical links. The links will terminate in multi-chip modules (MCMs) incorporating custom-designed integrated optics, and the trigger algorithms will be implemented in ASICs.RD-27 Note 33oai:cds.cern.ch:2892241995
spellingShingle Detectors and Experimental Techniques
Perera, V.
Edwards, J E G
Gee, N
Gillman, A R
Hatley, R
Leake, J W
Quinton, S
Shah, T P
Eisenhandler, Eric F
Landon, M
Brawn, I P
Carney, R E
Garvey, J
Staley, R J
Watson, A T
Ellis, Nick
A first-level calorimeter trigger for the ATLAS experiment
title A first-level calorimeter trigger for the ATLAS experiment
title_full A first-level calorimeter trigger for the ATLAS experiment
title_fullStr A first-level calorimeter trigger for the ATLAS experiment
title_full_unstemmed A first-level calorimeter trigger for the ATLAS experiment
title_short A first-level calorimeter trigger for the ATLAS experiment
title_sort first-level calorimeter trigger for the atlas experiment
topic Detectors and Experimental Techniques
url https://dx.doi.org/10.1109/23.467782
http://cds.cern.ch/record/289224
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