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Modeling and Validating Time, Buffering, and Utilization of a Large-Scale, Real-Time Data Acquisition System

机译:建模和验证大型实时数据采集系统的时间,缓冲和利用率

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摘要

Data acquisition systems for large-scale high-energy physics experiments have to handle hundreds of gigabytes per second of data, and are typically realized as specialized data centers that connect a very large number of front-end electronics devices to an event detection and storage system. The design of such systems is often based on many assumptions, small-scale experiments and a substantial amount of over-provisioning. In this work, we introduce a discrete event-based simulation tool that models the data flow of the current ATLAS data acquisition system, with the main goal to be accurate with regard to the main operational characteristics. We measure buffer occupancy counting the number of elements in buffers, resource utilization measuring output bandwidth and counting the number of active processing units, and their time evolution by comparing data over many consecutive and small periods of time. We perform studies on the error of simulation when comparing the results to a large amount of real-world operational data. We show which efforts are required to minimize error for such a configuration, and explain possible reasons for the most important outliers we are observing. Furthermore, we use this tool to derive an operational envelope of the system, which describes the minimal amount of resources required to fulfill certain real-time guarantees.
机译:用于大规模高能物理实验的数据采集系统必须每秒处理数百GB的数据,并且通常实现为将大量前端电子设备连接到事件检测和存储系统的专用数据中心。 。此类系统的设计通常基于许多假设,小规模实验和大量的超额配置。在这项工作中,我们引入了一个基于事件的离散仿真工具,该工具可以对当前ATLAS数据采集系统的数据流进行建模,其主要目标是在主要操作特性方面保持准确。我们通过比较许多连续时间段和较小时间段内的数据来测量缓冲区占用率,计算缓冲区中元素的数量,测量输出带宽并计算活动处理单元的数量的资源利用率,以及它们的时间演变。当将结果与大量实际操作数据进行比较时,我们会对模拟误差进行研究。我们将说明为使这种配置的错误最小化所需的努力,并说明了我们正在观察的最重要异常值的可能原因。此外,我们使用此工具得出系统的运行范围,该范围描述了实现某些实时保证所需的最少资源。

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