Commissioning the trigger of the Compact Muon Solenoid experiment at the CERN Large Hadron Collider

J. Leonard
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Abstract

The Compact Muon Solenoid (CMS) experiment at the Large Hadron Collider (LHC) has taken cosmic-ray and colliding-beam data in 2009 and will be in continuous data-taking mode beginning at the end of February 2010. CMS detects the interaction products of proton beams colliding at a rate of 40 MHz. It uses a two-level trigger system to flag interesting events and reduce the event rate to a lower level, suitable for storage of full event data. The first-level trigger uses custom-built electronics to combine information from electromagnetic and hadronic calorimeters and muon detection systems to identify potential physics objects of interest with a target output rate of 100 kHz. The high-level trigger uses a computer farm to process the first-level information and more detailed detector readout including data from the pixels and tracker to reconstruct the event more fully and reduce the rate further to 100 Hz. For much of 2009, cosmic rays provided data for commissioning the trigger system. In addition, the 2009 LHC collision runs at 900 GeV and 2.36 TeV center-of-mass energy provided an opportunity to commission and study the performance of the trigger under colliding-beam conditions. This talk will report on the commissioning experience gained in the 2009 cosmic and collision runs and the 2010 collision run.
在欧洲核子研究中心大型强子对撞机上调试紧凑型介子螺线管实验触发器
2009年,大型强子对撞机(LHC)上的紧凑型介子螺线管(CMS)实验已经采集了宇宙射线和碰撞束的数据,并将从2010年2月底开始进入连续数据采集模式。CMS检测质子束以40兆赫的速率碰撞的相互作用产物。它使用两级触发系统来标记感兴趣的事件,并将事件率降低到较低的级别,适合存储完整的事件数据。第一级触发器使用定制的电子设备,将电磁和强子量热计以及μ子探测系统的信息结合起来,以目标输出速率为100 kHz,识别感兴趣的潜在物理对象。高级触发器使用计算机场来处理第一级信息和更详细的检测器读出,包括来自像素和跟踪器的数据,以更充分地重建事件并将速率进一步降低到100 Hz。在2009年的大部分时间里,宇宙射线为启动触发系统提供了数据。此外,2009年LHC的碰撞运行在900 GeV和2.36 TeV的质心能量下,为在碰撞光束条件下启动和研究触发器的性能提供了机会。本次演讲将报告在2009年宇宙和碰撞运行和2010年碰撞运行中获得的调试经验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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