论文标题

红移空间星系功率谱和Biseptrum中的信息内容

Information content in the redshift-space galaxy power spectrum and bispectrum

论文作者

Agarwal, Nishant, Desjacques, Vincent, Jeong, Donghui, Schmidt, Fabian

论文摘要

我们介绍了一项关于银河系偏差的统计影响以及选择影响的Fisher信息研究对Galaxy Redshift调查的关键宇宙学参数估计的影响;特别是,在给定的红移,冷暗物质密度以及原始功率谱的倾斜和运行时,角直径距离,哈勃参数和线性生长速率。我们在这里包括的视线依赖性选择贡献存在于实际星系样本中。我们确定分析中包含的最大波数,要求分别在近六个宇宙学参数中的每个阶段和领先顺序上对星系功率谱或双光谱进行校正,分别以$ \ Lessim Sim的换档为$ \ Lessim0.25σ$。仅使用星系功率谱,选择效应就会严重恶化约束,尤其是在线性生长速率上。添加银河系双光谱有助于明显打破参数变性。我们发现,类似欧几里得的调查的关节功率 - 双光谱分析仍可以在完全边缘化而不是选择偏差后的线性生长速度衡量到10%的精度。我们还讨论了由于忽略选择效果和/或其他偏差参数而引起的系统参数转移,并强调必须以百分比的控制选择效果或对其进行边缘化。我们为罗马太空望远镜和Hetdex获得了类似的结果。

We present a Fisher information study of the statistical impact of galaxy bias and selection effects on the estimation of key cosmological parameters from galaxy redshift surveys; in particular, the angular diameter distance, Hubble parameter, and linear growth rate at a given redshift, the cold dark matter density, and the tilt and running of the primordial power spectrum. The line-of-sight-dependent selection contributions we include here are known to exist in real galaxy samples. We determine the maximum wavenumber included in the analysis by requiring that the next-order corrections to the galaxy power spectrum or bispectrum, treated here at next-to-leading and leading order, respectively, produce shifts of $\lesssim 0.25σ$ on each of the six cosmological parameters. With the galaxy power spectrum alone, selection effects can deteriorate the constraints severely, especially on the linear growth rate. Adding the galaxy bispectrum helps break parameter degeneracies significantly. We find that a joint power spectrum-bispectrum analysis of a Euclid-like survey can still measure the linear growth rate to 10% precision after complete marginalization over selection bias. We also discuss systematic parameter shifts arising from ignoring selection effects and/or other bias parameters, and emphasize that it is necessary to either control selection effects at the percent level or marginalize over them. We obtain similar results for the Roman Space Telescope and HETDEX.

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