论文标题

物质功率频谱协方差的宇宙学模型参数依赖性来自deus-pur $ cosmo $模拟

Cosmological Model Parameter Dependence of the Matter Power Spectrum Covariance from the DEUS-PUR $Cosmo$ Simulations

论文作者

Blot, Linda, Corasaniti, Pier-Stefano, Rasera, Yann, Agarwal, Shankar

论文摘要

未来的星系调查将在前所未有的尺度和红移范围内对物质功率谱进行准确的测量。对这些数据的分析将要求一个人准确地建模物质密度场非线性的烙印。特别是,这些引起对数据协方差的非高斯贡献,需要正确考虑以实现公正的宇宙参数推理分析。在这里,我们使用专用的n体模拟套件来研究物质功率谱协方差的宇宙学依赖性,黑色能量宇宙模拟 - 平行宇宙运行(deus-pur){\ it cosmo}。这些由512个实现10种不同的宇宙学实现组成,在这些宇宙学中,我们改变了物质密度$ω_m$,密度波动的幅度$σ_8$,减少的Hubble参数$ h $和状态$ W $的恒定暗能量$ W $的恒定$ w $降低约$ 10 \%$。我们使用这些数据来评估功率谱协方差的第一个和第二个衍生物相对于基准$λ$ CDM宇宙学。我们发现,根据规模,红移和模型参数的不同,变化可以大至$ 150 \%$。通过执行Fisher基质分析,我们探讨了不同选择在建模协方差依赖性中的影响。我们的结果表明,将协方差固定在基准宇宙学上可以显着影响恢复的参数错误,并在保持相关系数固定的同时对方差的宇宙学依赖性进行建模可以减轻这种影响的影响。

Future galaxy surveys will provide accurate measurements of the matter power spectrum across an unprecedented range of scales and redshifts. The analysis of these data will require one to accurately model the imprint of non-linearities of the matter density field. In particular, these induce a non-Gaussian contribution to the data covariance that needs to be properly taken into account to realise unbiased cosmological parameter inference analyses. Here, we study the cosmological dependence of the matter power spectrum covariance using a dedicated suite of N-body simulations, the Dark Energy Universe Simulation - Parallel Universe Runs (DEUS-PUR) {\it Cosmo}. These consist of 512 realizations for 10 different cosmologies where we vary the matter density $Ω_m$, the amplitude of density fluctuations $σ_8$, the reduced Hubble parameter $h$ and a constant dark energy equation of state $w$ by approximately $10\%$. We use these data to evaluate the first and second derivatives of the power spectrum covariance with respect to a fiducial $Λ$CDM cosmology. We find that the variations can be as large as $150\%$ depending on the scale, redshift and model parameter considered. By performing a Fisher matrix analysis we explore the impact of different choices in modelling the cosmological dependence of the covariance. Our results suggest that fixing the covariance to a fiducial cosmology can significantly affect the recovered parameter errors and that modelling the cosmological dependence of the variance while keeping the correlation coefficient fixed can alleviate the impact of this effect.

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