Optimal Reconstruction of the Hellings and Downs Correlation

IF 8.1 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY
Bruce Allen, Joseph D. Romano
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引用次数: 0

Abstract

Pulsar timing arrays (PTAs) detect gravitational waves (GWs) via the correlations they create in the arrival times of pulses from different pulsars. The mean correlation, a function of the angle between the directions to two pulsars, was predicted in 1983 by Hellings and Downs (HD). Observation of this angular pattern is crucial evidence that GWs are present, so PTAs “reconstruct the HD curve” by estimating the correlation using pulsar pairs separated by similar angles. Several studies have examined the amount by which this curve is expected to differ from the HD mean. The variance arises because (a) a finite set of pulsars at specific sky locations is used, (b) the GW sources interfere, and (c) the data are contaminated by noise. Here, for a Gaussian ensemble of sources, we predict that variance by constructing an optimal estimator of the HD correlation, taking into account the pulsar sky locations and the frequency distribution of the GWs and the pulsar noise. The variance is a ratio: the numerator depends upon the pulsar sky locations, and the denominator is the (effective) number of frequency bins for which the GW signal dominates the noise. In effect, after suitable combination, each such frequency bin gives an independent estimate of the HD correlation. Published by the American Physical Society 2025
Hellings - Downs相关性的优化重建
脉冲星定时阵列(PTAs)通过产生不同脉冲星脉冲到达时间的相关性来探测引力波(GWs)。平均相关性是两个脉冲星方向夹角的函数,是由Hellings和Downs (HD)在1983年预测的。观察到这种角度模式是GWs存在的关键证据,因此PTAs通过使用以相似角度分隔的脉冲星对估算相关性来“重建HD曲线”。一些研究已经检验了该曲线与HD平均值的预期差异。产生差异的原因是:(a)在特定的天空位置使用了一组有限的脉冲星,(b) GW源干扰,(c)数据受噪声污染。在这里,对于源的高斯系综,我们通过构建HD相关性的最优估计来预测方差,同时考虑脉冲星的天空位置以及GWs和脉冲星噪声的频率分布。方差是一个比率:分子取决于脉冲星的天空位置,分母是GW信号优于噪声的频率箱(有效)数。实际上,经过适当的组合,每个这样的频率bin给出了HD相关性的独立估计。2025年由美国物理学会出版
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来源期刊
Physical review letters
Physical review letters 物理-物理:综合
CiteScore
16.50
自引率
7.00%
发文量
2673
审稿时长
2.2 months
期刊介绍: Physical review letters(PRL)covers the full range of applied, fundamental, and interdisciplinary physics research topics: General physics, including statistical and quantum mechanics and quantum information Gravitation, astrophysics, and cosmology Elementary particles and fields Nuclear physics Atomic, molecular, and optical physics Nonlinear dynamics, fluid dynamics, and classical optics Plasma and beam physics Condensed matter and materials physics Polymers, soft matter, biological, climate and interdisciplinary physics, including networks
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