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Nonlinear Structure Formation And The Acoustic Scale

机译:非线性结构的形成和声学尺度

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摘要

We present high signal-to-noise ratio measurements of the acoustic scale in the presence of nonlinear growth and redshift distortions using 320 h~(-3) Gpc~3 of cosmological particle-mesh simulations. Using simple fitting methods, we obtain robust measurements of the acoustic scale with scatter close to that predicted by the Fisher matrix. We detect and quantify the shift in the acoustic scale by analyzing the power spectrum: we detect at greater than 5 σ a decrease in the acoustic scale in the real-space matter power spectrum of 0.2% at z = 1.5, growing to 0.45% atz = 0.3. In redshift space, the shifts are about 25% larger: we detect a decrease of 0.25% at z = 1.5 and 0.54% at z = 0.3. Despite the nonzero amounts, these shifts arc highly predictable numerically, and hence removable within the standard ruler analysis of clustering data. Moreover, we show that a simple density field reconstruction method substantially reduces the scatter and nonlinear shifts of the acoustic scale measurements: the shifts are reduced to less than 0.1% atz = 0.3-1.5, even in the presence of nonnegligible shot noise. Finally, we show that the ratio of the cosmological distance to the sound horizon that would be inferred from these fits is robust to variations in the parameterization of the fitting method and reasonable differences in the template cosmology.
机译:我们提出了使用320 h〜(-3)Gpc〜3的宇宙粒子网格模拟,在存在非线性增长和红移失真的情况下,对声标度进行高信噪比测量的方法。使用简单的拟合方法,我们获得了声标度的稳健测量结果,其散点接近费舍尔矩阵所预测的散度。我们通过分析功率谱来检测和量化声标的位移:在大于5σ时,在z = 1.5时,实空间物质功率谱中的声标减小了0.2%,增长到0.45%atz = 0.3。在红移空间中,偏移大约大25%:我们在z = 1.5处检测到0.25%的下降,在z = 0.3处检测到0.54%的下降。尽管量为非零值,但这些偏移在数值上是高度可预测的,因此可以在聚类数据的标准标尺分析中删除。此外,我们显示了一种简单的密度场重构方法,可以显着减少声标测量值的散射和非线性偏移:即使在存在不可忽略的散粒噪声的情况下,偏移也可以减小至小于0.1%atz = 0.3-1.5。最后,我们证明了从这些拟合中推断出的宇宙学距离与声视界之比对于拟合方法的参数化变化和模板宇宙学的合理差异具有鲁棒性。

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