lisa中的倾斜-长度耦合-不确定性和偏差

IF 3.7 3区 物理与天体物理 Q2 ASTRONOMY & ASTROPHYSICS Classical and Quantum Gravity Pub Date : 2025-01-24 DOI:10.1088/1361-6382/ada866
M-S Hartig, J Marmor, D George, S Paczkowski and J Sanjuan
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引用次数: 0

摘要

航天器及其组件与光学平台和望远镜的角抖动耦合到干涉长度读出将是LISA任务的主要噪声源。我们把这种噪声称为倾斜到长度(TTL)耦合。它将通过重新排列直接减小,然后在后处理中减去残余噪声。这些缓解策略的成功取决于TTL耦合系数的精确计算。本文分析了在不同抖动特性、角度读数噪声水平和引力波源下的系数估计精度。我们分析了在哪种情况下,使用两个估计量,即公共最小二乘估计量和工具变量估计量来降低估计。我们的研究表明,角度读出噪声导致最小二乘估计器的系统偏差,这取决于TTL耦合系数、抖动和读出噪声水平,而工具变量估计器随着数据集长度的增加收敛到无偏结果。我们提出了一个公式来预测最小二乘法的估计偏差由于角读出噪声。
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Tilt-to-length coupling in LISA—uncertainty and biases
The coupling of the angular jitter of the spacecraft and their sub-assemblies with the optical bench and the telescope into the interferometric length readout will be a major noise source in the LISA mission. We refer to this noise as tilt-to-length (TTL) coupling. It will be reduced directly by realignments, and the residual noise will then be subtracted in post-processing. The success of these mitigation strategies depends on an accurate computation of the TTL coupling coefficients. We present here a thorough analysis of the accuracy of the coefficient estimation under different jitter characteristics, angular readout noise levels, and gravitational wave sources. We analyze in which cases the estimates degrade using two estimators, the common least squares estimator and the instrumental variables estimator. Our investigations show that angular readout noise leads to a systematic bias of the least squares estimator, depending on the TTL coupling coefficients, jitter and readout noise level, while the instrumental variable estimator converges to an unbiased result as the data set length increases. We present an equation that predicts the estimation bias of the least squares method due to angular readout noise.
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来源期刊
Classical and Quantum Gravity
Classical and Quantum Gravity 物理-天文与天体物理
CiteScore
7.00
自引率
8.60%
发文量
301
审稿时长
2-4 weeks
期刊介绍: Classical and Quantum Gravity is an established journal for physicists, mathematicians and cosmologists in the fields of gravitation and the theory of spacetime. The journal is now the acknowledged world leader in classical relativity and all areas of quantum gravity.
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