论文标题

一个星系宇宙学?

Cosmology with one galaxy?

论文作者

Villaescusa-Navarro, Francisco, Ding, Jupiter, Genel, Shy, Tonnesen, Stephanie, La Torre, Valentina, Spergel, David N., Teyssier, Romain, Li, Yin, Heneka, Caroline, Lemos, Pablo, Anglés-Alcázar, Daniel, Nagai, Daisuke, Vogelsberger, Mark

论文摘要

星系可以以许多内部特性(例如恒星质量,气体金属性和恒星形成速率)来表征。我们量化了个体星系的内部特性及其宿主暗物质光环所包含的宇宙学和天体物理信息的量。我们使用来自2,000个最先进的流体动力模拟的数十万个星系训练神经网络,这些模拟具有不同的宇宙学和骆驼项目的天体物理模型,以对宇宙学和天体物理参数的价值进行无可能的推断。我们发现,了解单个星系的内部属性允许我们的模型在固定的$ω_ {\ rm b} $上推断$ω_ {\ rm m} $的值,并使用$ \ sim10 \%$ precision推断,而没有任何约束可以放在$σ_8$上。我们的结果适用于任何类型的星系,中央或卫星,大型或矮人,均被认为是红移,$ z \ leq3 $,并且它们在骆驼中建立了不确定性的天体物理学中的不确定性。但是,由于固有差异很大,我们的模型对亚网格物理学的变化并不强大。两个考虑的模型在星系特性上的印记。我们发现恒星质量,恒星金属性和最大圆速度是确定$ω_ {\ rm m} $的值的最重要的星系属性。我们认为,可以考虑到$ω_ {\ rm m} $的值的变化或可能$ω_ {\ rm b}/ω_ {\ rm m} $的变化,会影响我们的结果。这种效果在银河系特性中留下了独特的特征,与银河系过程引起的效果。我们的结果表明,低维歧管托管星系特性提供了宇宙学和天体物理学之间的紧密直接联系。

Galaxies can be characterized by many internal properties such as stellar mass, gas metallicity, and star-formation rate. We quantify the amount of cosmological and astrophysical information that the internal properties of individual galaxies and their host dark matter halos contain. We train neural networks using hundreds of thousands of galaxies from 2,000 state-of-the-art hydrodynamic simulations with different cosmologies and astrophysical models of the CAMELS project to perform likelihood-free inference on the value of the cosmological and astrophysical parameters. We find that knowing the internal properties of a single galaxy allow our models to infer the value of $Ω_{\rm m}$, at fixed $Ω_{\rm b}$, with a $\sim10\%$ precision, while no constraint can be placed on $σ_8$. Our results hold for any type of galaxy, central or satellite, massive or dwarf, at all considered redshifts, $z\leq3$, and they incorporate uncertainties in astrophysics as modeled in CAMELS. However, our models are not robust to changes in subgrid physics due to the large intrinsic differences the two considered models imprint on galaxy properties. We find that the stellar mass, stellar metallicity, and maximum circular velocity are among the most important galaxy properties to determine the value of $Ω_{\rm m}$. We believe that our results can be explained taking into account that changes in the value of $Ω_{\rm m}$, or potentially $Ω_{\rm b}/Ω_{\rm m}$, affect the dark matter content of galaxies. That effect leaves a distinct signature in galaxy properties to the one induced by galactic processes. Our results suggest that the low-dimensional manifold hosting galaxy properties provides a tight direct link between cosmology and astrophysics.

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