论文标题

精密宇宙学在最终的老板数据中带有空隙

Precision cosmology with voids in the final BOSS data

论文作者

Hamaus, Nico, Pisani, Alice, Choi, Jin-Ah, Lavaux, Guilhem, Wandelt, Benjamin D., Weller, Jochen

论文摘要

我们报告了最终Boss DR12数据集中宇宙空隙中获得的新颖宇宙学约束。它们来自红移空间中平均空隙形状的几何和动态扭曲的联合分析(即,堆叠的void-galaxy互相关函数)。我们的模型使用层析成像读数来推断真实的空间空隙曲线,并自愿解释了阿尔科克 - 帕奇尼斯基(AP)效应和红移空间扭曲(RSD),而没有任何先前对宇宙学或结构形成的假设。它源自第一个物理原理,并在线性扰动顺序上提供了对数据的非常好的描述。 We validate this model with the help of mock catalogs and apply it to the final BOSS data to constrain the RSD and AP parameters $f/b$ and $D_AH/c$, where $f$ is the linear growth rate, $b$ the linear galaxy bias, $D_A$ the comoving angular diameter distance, $H$ the Hubble rate, and $c$ the speed of light.此外,我们在分析中包括两个滋扰参数,以使潜在系统学边缘化。我们获得$ f/b = 0.540 \ pm0.091 $和$ d_AH/c = 0.588 \ pm0.004 $从完整的void样本中,平均红移为$ z = 0.51 $。在平坦的$λ$ CDM宇宙学中,这意味着$ω__\ mathrm {m} = 0.312 \ pm0.020 $对于当今的物质密度参数。当我们使用调查中的其他信息模拟校准我们的模型时,这些限制将提高到$ f/b = 0.347 \ pm0.023 $,$ d_AH/c = 0.588 \ pm0.003 $和$ω_____\ MATHRM {M MATHRM {M} = 0.310 \ 0.310 \ pM0.01717 $。但是,我们强调的是,校准取决于模拟中假定的宇宙学和结构形成的特定模型,因此应将校准的结果视为较低的稳定性。然而,我们与校准无关的约束是迄今为止最紧密的约束之一,这表明在当前和将来的数据中使用宇宙空隙进行宇宙学的巨大潜力。

We report novel cosmological constraints obtained from cosmic voids in the final BOSS DR12 dataset. They arise from the joint analysis of geometric and dynamic distortions of average void shapes (i.e., the stacked void-galaxy cross-correlation function) in redshift space. Our model uses tomographic deprojection to infer real-space void profiles and self-consistently accounts for the Alcock-Paczynski (AP) effect and redshift-space distortions (RSD) without any prior assumptions on cosmology or structure formation. It is derived from first physical principles and provides an extremely good description of the data at linear perturbation order. We validate this model with the help of mock catalogs and apply it to the final BOSS data to constrain the RSD and AP parameters $f/b$ and $D_AH/c$, where $f$ is the linear growth rate, $b$ the linear galaxy bias, $D_A$ the comoving angular diameter distance, $H$ the Hubble rate, and $c$ the speed of light. In addition, we include two nuisance parameters in our analysis to marginalize over potential systematics. We obtain $f/b=0.540\pm0.091$ and $D_AH/c=0.588\pm0.004$ from the full void sample at a mean redshift of $z=0.51$. In a flat $Λ$CDM cosmology, this implies $Ω_\mathrm{m}=0.312\pm0.020$ for the present-day matter density parameter. When we use additional information from the survey mocks to calibrate our model, these constraints improve to $f/b=0.347\pm0.023$, $D_AH/c=0.588\pm0.003$, and $Ω_\mathrm{m}=0.310\pm0.017$. However, we emphasize that the calibration depends on the specific model of cosmology and structure formation assumed in the mocks, so the calibrated results should be considered less robust. Nevertheless, our calibration-independent constraints are among the tightest of their kind to date, demonstrating the immense potential of using cosmic voids for cosmology in current and future data.

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