论文标题

2D-FFTLOG:用于星系聚类和弱透镜的真实空间协方差矩阵的有效计算

2D-FFTLog: Efficient computation of real space covariance matrices for galaxy clustering and weak lensing

论文作者

Fang, Xiao, Eifler, Tim, Krause, Elisabeth

论文摘要

两点函数的准确协方差矩阵对于在大规模结构调查的可能性分析中推断宇宙学参数至关重要。在获得协方差的各种方法中,分析计算要比数据或模拟中的估计更快且嘈杂。但是,协方差从傅立叶空间变为真实空间涉及两个Bessel积分的积分,这些积分在数值上很慢,很容易受到数值不确定性的影响。不准确的协方差可能导致宇宙学参数推断的重大错误。在本文中,我们引入了一种2D-FFTLOG算法,以实现3D和投影统计的非高斯实际空间协方差的有效,准确和数值稳定的计算。 2D-FFTLOG算法很容易扩展以执行真实空间bin平均。 We apply the algorithm to the covariances for galaxy clustering and weak lensing for a Dark Energy Survey Year 3-like and a Rubin Observatory's Legacy Survey of Space and Time Year 1-like survey, and demonstrate that for both surveys, our algorithm can produce numerically stable angular bin-averaged covariances with the flat sky approximation, which are sufficiently accurate for inferring cosmological parameters.与本文一起释放了用于计算有或没有平坦天空近似的真实空间协方差的代码。

Accurate covariance matrices for two-point functions are critical for inferring cosmological parameters in likelihood analyses of large-scale structure surveys. Among various approaches to obtaining the covariance, analytic computation is much faster and less noisy than estimation from data or simulations. However, the transform of covariances from Fourier space to real space involves integrals with two Bessel integrals, which are numerically slow and easily affected by numerical uncertainties. Inaccurate covariances may lead to significant errors in the inference of the cosmological parameters. In this paper, we introduce a 2D-FFTLog algorithm for efficient, accurate and numerically stable computation of non-Gaussian real space covariances for both 3D and projected statistics. The 2D-FFTLog algorithm is easily extended to perform real space bin-averaging. We apply the algorithm to the covariances for galaxy clustering and weak lensing for a Dark Energy Survey Year 3-like and a Rubin Observatory's Legacy Survey of Space and Time Year 1-like survey, and demonstrate that for both surveys, our algorithm can produce numerically stable angular bin-averaged covariances with the flat sky approximation, which are sufficiently accurate for inferring cosmological parameters. The code CosmoCov for computing the real space covariances with or without the flat sky approximation is released along with this paper.

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