论文标题

物理:一种物理方法,用于边缘化LIGO校准不确定性

physiCal: A physical approach to the marginalization of LIGO calibration uncertainties

论文作者

Vitale, Salvatore, Haster, Carl-Johan, Sun, Ling, Farr, Ben, Goetz, Evan, Kissel, Jeff, Cahillane, Craig

论文摘要

必须校准来自地面引力波检测器(例如高级Ligo和处女座)的数据,以将光电探测器的数字输出转换为检测器中测试量的相对位移,从而产生了天体物理重力波源推断的兴趣量。统计不确定性和系统错误都与校准过程相关联,这反过来会影响检测到的来源的分析(如果不考虑)。当前,源表征算法要么完全忽略了校准不确定性的可能性,要么以不使用校准过程本身知识的方式来解释它们。我们提出了一种在源表征步骤中考虑校准错误的新方法,该方法直接使用了有关仪器校准过程的所有信息。我们没有对整体检测器的响应函数进行建模,而是考虑对响应有助的各个组件。我们实施了这种方法,并将其应用于Ligo和Pirgo在第二次观察过程中检测到的紧凑型二进制文件,以及模拟二进制中子星的模拟二进制中子恒星,以确切地知道天空位置和距离。我们发现物理模型以及当前在Ligo-Virgo协作中使用的方法,但此外,它可以通过天体物理校准来改进仪器控制的特定组件的测量。

The data from ground based gravitational-wave detectors such as Advanced LIGO and Virgo must be calibrated to convert the digital output of photodetectors into a relative displacement of the test masses in the detectors, producing the quantity of interest for inference of astrophysical gravitational wave sources. Both statistical uncertainties and systematic errors are associated with the calibration process, which would in turn affect the analysis of detected sources, if not accounted for. Currently, source characterization algorithms either entirely neglect the possibility of calibration uncertainties or account for them in a way that does not use knowledge of the calibration process itself. We present physiCal, a new approach to account for calibration errors during the source characterization step, which directly uses all the information available about the instrument calibration process. Rather than modeling the overall detector's response function, we consider the individual components that contribute to the response. We implement this method and apply it to the compact binaries detected by LIGO and Virgo during the second observation run, as well as to simulated binary neutron stars for which the sky position and distance are known exactly. We find that the physiCal model performs as well as the method currently used within the LIGO-Virgo collaboration, but additionally it enables improving the measurement of specific components of the instrument control through astrophysical calibration.

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