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Calibration of the Advanced LIGO detectors for the discovery of the binary black-hole merger GW150914

机译:校准高级LIGO检测器以发现二元黑洞合并GW150914

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摘要

In Advanced LIGO, detection and astrophysical source parameter estimation of the binary black hole merger GW150914 requires a calibrated estimate of the gravitational-wave strain sensed by the detectors. Producing an estimate from each detector’s differential arm length control loop readout signals requires applying time domain filters, which are designed from a frequency domain model of the detector’s gravitational-wave response. The gravitational-wave response model is determined by the detector’s opto-mechanical response and the properties of its feedback control system. The measurements used to validate the model and characterize its uncertainty are derived primarily from a dedicated photon radiation pressure actuator, with cross-checks provided by optical and radio frequency references. We describe how the gravitational-wave readout signal is calibrated into equivalent gravitational-wave-induced strain and how the statistical uncertainties and systematic errors are assessed. Detector data collected over 38 calendar days, from September 12 to October 20, 2015, contain the event GW150914 and approximately 16 days of coincident data used to estimate the event false alarm probability. The calibration uncertainty is less than 10% in magnitude and 10° in phase across the relevant frequency band, 20 Hz to 1 kHz.
机译:在Advanced LIGO中,二进制黑洞合并GW150914的检测和天体源参数估计需要对检测器感应到的重力波应变进行校准估计。要根据每个探测器的差动臂长控制环读出信号产生一个估计值,就需要应用时域滤波器,该滤波器是根据探测器的重力波响应的频域模型设计的。重力波响应模型取决于探测器的光机械响应及其反馈控制系统的特性。用于验证模型并表征其不确定性的测量值主要来自专用的光子辐射压力致动器,并通过光学和射频参考提供了交叉检查。我们描述了如何将重力波读出信号校准为等效的重力波感应应变,以及如何评估统计不确定性和系统误差。从2015年9月12日到10月20日的38个日历日中收集的检测器数据包含事件GW150914和大约16天的一致数据,这些数据用于估计事件错误警报概率。在20 Hz至1 kHz的相关频带内,校准不确定度的幅度小于10%,相位小于10°。

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