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Online measurement of LHC beam parameters with the ATLAS High-Level Trigger

机译:使用ATLAS高电平触发器在线测量LHC光束参数

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We present the results of the first online meas purement in ATLAS of the LHC beam position and size at √s = 900 GeV in 2009 and √s = 7 TeV in spring 2010. A dedicated algorithm, implemented in the ATLAS Level 2 Trigger, takes fully reconstructed tracks in the Inner Detector as input to a fast vertex fitter in order to reconstruct vertices on an event-by-event basis. The three-dimensional distribution of primary vertices carries information of the LHC luminous region at the ATLAS interaction point and is used to extract its position, size and tilt angles. The luminous region parameters are monitored in real-time and used for feedback to the LHC.With this method, we observe changes in the transverse centroid position that mirror IP-orbit drifts, as well as longitudinal shifts arising from RF phase changes. Also, variations in the transverse widths, and an expected increase in the longitudinal spot size over the course of a fill were seen. In addition, the measured beam spot is used to track significant changes in the accelerator, which can then be redistributed to the High-Level Trigger for use by trigger algorithms that depend on the precise knowledge of impact parameter or decay length, such as b-tagging. We will present the techniques developed to allow such real-time configuration changes on the High-Level Trigger farm of currently 810 processing nodes in a way that does not disrupt data taking or incur deadtime, while ensuring a consistent and reproducible configuration across the farm. Lastly, by counting the primary vertices online, we use this same algorithm to provide online monitoring of the instantaneous luminosity of the accelerator. The beam position measurements presented here were available in real-time and used to provide feedback to the LHC operators for beam adjustments during the first LHC runs.
机译:我们介绍了LLAS光束位置和大小的ATLAS首次在线测量纯净的结果,2009年的√s= 900 GeV,2010年春季的√s= 7 TeV。在ATLAS 2级触发器中实现的专用算法需要在内部检测器中完全重建的轨迹作为快速顶点拟合器的输入,以便在逐事件的基础上重建顶点。主顶点的三维分布在ATLAS交互点承载LHC发光区域的信息,并用于提取其位置,大小和倾斜角度。实时监控发光区域参数并将其用于LHC的反馈。通过这种方法,我们观察到了反映IP轨道漂移的横向质心位置的变化以及RF相位变化引起的纵向偏移。同样,可以看到横向宽度的变化以及在填充过程中纵向斑点尺寸的预期增加。此外,测得的束斑用于跟踪加速器中的重大变化,然后可以将其重新分配给高级触发器,以供触发算法使用,该算法取决于冲击参数或衰减长度的精确知识,例如b-标记。我们将介绍开发的技术,以允许在当前810个处理节点的高层触发器服务器场上进行此类实时配置更改,而不会破坏数据获取或导致停滞时间,同时确保整个服务器场中的配置一致且可重现。最后,通过在线计算主顶点,我们使用相同的算法对加速器的瞬时亮度进行在线监视。这里介绍的光束位置测量是实时可用的,并用于向LHC操作员提供反馈,以在第一个LHC运行期间进行光束调节。

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