论文标题

地理600天文台的双线性噪声减法

Bilinear noise subtraction at the GEO 600 observatory

论文作者

Mukund, Nikhil, Lough, James, Affeldt, Christoph, Bergamin, Fabio, Bisht, Aparna, Brinkmann, Marc, Kringel, Volker, Lück, Harald, Nadji, Séverin Landry, Weinert, Michael, Danzmann, Karsten

论文摘要

用于将重力波检测器保持在稳定工作点的纵向控制信号通常受到测试质量未对准的调制,导致高架噪声地板范围为50至500 Hz。此类的非平稳噪声导致调制边带,并增加了在校准应变数据中观察到的故障数量。这些伪像最终会影响数据质量,并降低数据分析管道的效率,以寻找来自连续波和瞬态事件的天体物理信号。在这项工作中,我们开发了一种从重力波应变数据中减去这样的双线性噪声的方案,并在GEO 600天文台中证明了这一点。我们通过利用已经用于噪声投影目的的窄带信号注射来估算耦合,并通过两阶段系统识别过程构建连贯的双线性信号。我们通过采用贝叶斯自适应定向搜索策略来改进现有的滤波器设计技术,该策略在影响估计模型准确性的几个关键参数上优化。该方案通过定期更新所涉及的滤波器系数来考虑耦合中可能的非组织性。由此产生的后减法导致校准线周围的调制边带的抑制,并减少频率中间噪声。观察到的天体物理范围的增加和非粪便瞬变的发生的减少表明,上述方法是一种可行的数据清洁技术,用于当前和未来的引力波观测站。

Longitudinal control signals used to keep gravitational wave detectors at a stable operating point are often affected by modulations from test mass misalignments leading to an elevated noise floor ranging from 50 to 500 Hz. Nonstationary noise of this kind results in modulation sidebands and increases the number of glitches observed in the calibrated strain data. These artifacts ultimately affect the data quality and decrease the efficiency of the data analysis pipelines looking for astrophysical signals from continuous waves as well as the transient events. In this work, we develop a scheme to subtract one such bilinear noise from the gravitational wave strain data and demonstrate it at the GEO 600 observatory. We estimate the coupling by making use of narrow-band signal injections that are already in place for noise projection purposes and construct a coherent bilinear signal by a two-stage system identification process. We improve upon the existing filter design techniques by employing a Bayesian adaptive directed search strategy that optimizes across the several key parameters that affect the accuracy of the estimated model. The scheme takes into account the possible nonstationarities in the coupling by periodically updating the involved filter coefficients. The resulting postoffline subtraction leads to a suppression of modulation sidebands around the calibration lines along with a broadband reduction of the midfrequency noise floor. The observed increase in the astrophysical range and a reduction in the occurrence of nonastrophysical transients suggest that the above method is a viable data cleaning technique for current and future generation gravitational wave observatories.

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