Evolution of the Distributed Computing Model of the CMS experiment at the LHC

被引:5
作者
Grandi, C. [1 ]
Bockelman, B.
Bonacorsi, D. [1 ]
Donvito, G.
Dykstra, D.
Fisk, I.
Hernandez, J.
Metson, S.
Sfiligoi, I.
Wakefield, S.
机构
[1] INFN Bologna, Bologna, Italy
来源
INTERNATIONAL CONFERENCE ON COMPUTING IN HIGH ENERGY AND NUCLEAR PHYSICS 2012 (CHEP2012), PTS 1-6 | 2012年 / 396卷
关键词
D O I
10.1088/1742-6596/396/3/032053
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The Computing Model of the CMS experiment was prepared in 2005 and described in detail in the CMS Computing Technical Design Report. With the experience of the first years of LHC data taking and with the evolution of the available technologies, the CMS Collaboration identified areas where improvements were desirable. In this work we describe the most important modifications that have been, or are being implemented in the Distributed Computing Model of CMS. The Worldwide LHC computing Grid (WLCG) project acknowledged that the whole distributed computing infrastructure is impacted by this kind of changes that are happening in most LHC experiments and decided to create several Technical Evolution Groups (TEG) aiming at assessing the situation and at developing a strategy for the future. In this work we describe the CMS view on the TEG activities as well.
引用
收藏
页数:9
相关论文
共 50 条
[21]   The TOTEM/CMS forward experiment at the LHC [J].
Eggert, K .
NUCLEAR PHYSICS B-PROCEEDINGS SUPPLEMENTS, 2003, 122 :447-450
[22]   Forward physics with the CMS experiment at the LHC [J].
McCauley, T. .
NUCLEAR PHYSICS B-PROCEEDINGS SUPPLEMENTS, 2009, 196 :18-23
[23]   CMS experiment at the LHC: Results and outlook [J].
I. A. Golutvin ;
S. V. Shmatov .
Physics of Particles and Nuclei, 2017, 48 :720-726
[24]   Forward Physics with the CMS Experiment at LHC [J].
Cerci, D. Sunar .
5TH INTERNATIONAL CONFERENCE ON NEW FRONTIERS IN PHYSICS, 2017, 164
[25]   The RPC system for the CMS experiment at the LHC [J].
Abbrescia, M ;
Colaleo, A ;
Iaselli, G ;
Loddo, F ;
Maggi, M ;
Marangelli, B ;
Natali, S ;
Nuzzo, S ;
Pugliese, G ;
Ranieri, A ;
Romano, F ;
Altieri, S ;
Belli, G ;
Bruno, G ;
Guida, R ;
Ratti, SP ;
Riccardi, C ;
Torre, P ;
Vitulo, P .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2003, 508 (1-2) :137-141
[26]   Dimuon Physics with the CMS Experiment at the LHC [J].
A. Lanev .
Physics of Particles and Nuclei, 2024, 55 :123-131
[27]   CMS experiment at the LHC: Results and outlook [J].
Golutvin, I. A. ;
Shmatov, S. V. .
PHYSICS OF PARTICLES AND NUCLEI, 2017, 48 (05) :720-726
[28]   Characterizing a High Throughput Computing Workload: The Compact Muon Solenoid (CMS) Experiment at LHC [J].
da Silva, Rafael Ferreira ;
Rynge, Mats ;
Juve, Gideon ;
Sfiligoi, Igor ;
Deelman, Ewa ;
Letts, James ;
Wurthwein, Frank ;
Livny, Miron .
INTERNATIONAL CONFERENCE ON COMPUTATIONAL SCIENCE, ICCS 2015 COMPUTATIONAL SCIENCE AT THE GATES OF NATURE, 2015, 51 :39-48
[29]   Computing challenges of the CMS experiment [J].
Krammer, N. ;
Liko, D. .
JOURNAL OF INSTRUMENTATION, 2017, 12
[30]   The commissioning of CMS computing centres in the worldwide LHC computing Grid [J].
Belforte, S. ;
Fanfani, A. ;
Fisk, I. ;
Fix, J. ;
Hernandez, J. ;
Klem, J. ;
Letts, J. ;
Magini, N. ;
Miccio, V. ;
Padhi, S. ;
Saiz, P. ;
Sciaba, A. ;
Wuerthwein, F. .
2008 IEEE NUCLEAR SCIENCE SYMPOSIUM AND MEDICAL IMAGING CONFERENCE (2008 NSS/MIC), VOLS 1-9, 2009, :1238-+