论文标题

H.E.S.S.瞬态随访系统

The H.E.S.S. transients follow-up system

论文作者

Hoischen, C., Füßling, M., Ohm, S., Balzer, A., Ashkar, H., Bernlöhr, K., Hofverberg, P., Holch, T. L., Murach, T., Prokoph, H., Schüssler, F., Zhu, S. J., Berge, D., Egberts, K., Stegmann, C.

论文摘要

天体物理瞬变的观察带来了许多新颖的发现,并为在宇宙中极端条件下工作的物理过程提供了新的见解。多波长和多通信的可变对象观察结果需要专门的过程和后续系统,能够消化和对外部警报做出反应以执行协调的后续活动。此类后续系统的主要功能是对传入警报的处理,过滤和排名,根据量身定制的观察策略的观测策略以及对操作员和其他工具的反馈,对观测值进行了完全自动化的快速执行。 H.E.S.S.自2003年就职以来一直在寻找瞬态现象。在本文中,我们描述了H.E.S.S.的瞬态随访系统。该系统允许H.E.S.S.进行更通用,优化和很大程度上自主的瞬态随访程序,将所有主要功能结合在一种系统的方法中。我们将一般后续系统的设计,中心功能和接口及其三个主要组成部分详细描述:机遇系统的目标(也是警报系统的目标),数据采集和中央控制系统以及实时分析。我们重点介绍了架构决策和功能,这些决策能够完全自动进行后续行动,并指示子系统的关键性能指标。我们讨论了系统的功能,并突出了对不同子系统进行微调相互作用的需求,以便快速,可靠地做出反应。根据新的和大型的科学基础设施以及相关的挑战,在这个令人兴奋的可互动的天文学新时代中,从后续系统的发展,整合和运作中学到了教训。

Observations of astrophysical transients have brought many novel discoveries and provided new insights into physical processes at work under extreme conditions in the Universe. Multi-wavelength and multi-messenger observations of variable objects require dedicated procedures and follow-up systems capable of digesting and reacting to external alerts to execute coordinated follow-up campaigns. The main functions of such follow-up systems are the processing, filtering, and ranking of the incoming alerts, the fully automated rapid execution of the observations according to an observation strategy tailored to the instrument, and real-time data analysis with feedback to the operators and other instruments. H.E.S.S. has been searching for transient phenomena since its inauguration in 2003. In this paper, we describe the transients follow-up system of H.E.S.S. which became operational in 2016. The system allows H.E.S.S. to conduct a more versatile, optimised, and largely autonomous transient follow-up program, combining all major functionalities in one systematic approach. We describe the design, central functionalities, and interfaces of the follow-up system in general and its three main components in detail: the Target of Opportunity (ToO) alert system, the data acquisition and central control system, and the real-time analysis. We highlight architectural decisions and features that enable fully automatic ToO follow-up and indicate key performance metrics of the sub-systems. We discuss the system's capabilities and highlight the need for a fine-tuned interplay of the different sub-systems in order to react quickly and reliably. Lessons learned from the development, integration, and operation of the follow-up system are reviewed in light of new and large science infrastructures and associated challenges in this exciting new era of inter-operable astronomy.

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