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The LOFAR Transients Pipeline

机译:LOFAR瞬态管道

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Current and future astronomical survey facilities provide a remarkably rich opportunity for transient astronomy, combining unprecedented fields of view with high sensitivity and the ability to access previously unexplored wavelength regimes. This is particularly true of LOFAR, a recently-commissioned, low-frequency radio interferometer, based in the Netherlands and with stations across Europe. The identification of and response to transients is one of LOFAR's key science goals. However, the large data volumes which LOFAR produces, combined with the scientific requirement for rapid response, make automation essential. To support this, we have developed the LOFAR Transients Pipeline, or TraP. The TraP ingests multi-frequency image data from LOFAR or other instruments and searches it for transients and variables, providing automatic alerts of significant detections and populating a lightcurve database for further analysis by astronomers. Here, we discuss the scientific goals of the TraP and how it has been designed to meet them. We describe its implementation, including both the algorithms adopted to Maximize performance as well as the development methodology used to ensure it is robust and reliable, particularly in the presence of artefacts typical of radio astronomy imaging. Finally, we report on a series of tests of the pipeline carried out using simulated LOFAR observations with a known population of transients. (C) 2015 Elsevier B.V. All rights reserved.
机译:当前和未来的天文测量设施为瞬态天文学提供了极为丰富的机会,将空前的视野,高灵敏度和访问以前未探索的波长范围的能力结合在一起。 LOFAR尤其如此,LOFAR是最近投入使用的低频无线电干涉仪,其总部位于荷兰,并在欧洲设有站点。识别和响应瞬态是LOFAR的关键科学目标之一。但是,LOFAR产生的大量数据,加上对快速响应的科学要求,使得自动化至关重要。为此,我们开发了LOFAR瞬态管道或TraP。 TraP会从LOFAR或其他仪器中摄取多频图像数据,并在其中搜索瞬变和变量,从而为重要检测结果提供自动警报,并填充光曲线数据库以供天文学家进一步分析。在这里,我们讨论了TraP的科学目标以及如何设计以实现它们。我们描述了它的实现,包括用于最大化性能的算法以及用于确保其鲁棒性和可靠性的开发方法,特别是在射电天文成像具有典型伪像的情况下。最后,我们报告了使用模拟的LOFAR观测值进行的一系列管道测试,并具有已知的瞬变现象。 (C)2015 Elsevier B.V.保留所有权利。

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