论文标题
欧几里得准备:ix。 Euclidemulator2-功率谱仿真,具有巨大的中微子和自一致的暗能量扰动
Euclid preparation: IX. EuclidEmulator2 -- Power spectrum emulation with massive neutrinos and self-consistent dark energy perturbations
论文作者
论文摘要
我们提出了Euclidemulator(称为Euclidemulator2)的新的更新版本,这是一种快速准确的预测因子,用于对物质功率谱的非线性校正。现在,在$ W_0W_A $ CDM $+\ summ_ν$ redshift $ z = 0 $ z = 0 $和$ z之间的八维参数空间中支持百分比级别的准确模拟空间,空间尺度为0.01 $ h $ h $/mpc $ \ leq k \ leq k \ leq $ 10 $ h $ h $ h $/mpc。 In order to achieve this level of accuracy, we have had to improve the quality of the underlying N-body simulations used as training data: (1) we use self-consistent linear evolution of non-dark matter species such as massive neutrinos, photons, dark energy and the metric field, (2) we perform the simulations in the so-called N-body gauge, which allows one to interpret the results in the framework of general relativity, (3) we run over 250具有$ 3000^3 $颗粒的高分辨率模拟,包括1(gpc/$ h $)$ {}^3 $卷,基于成对和固定的初始条件,(4)我们提供了一个分辨率校正,可以将结果应用于仿效结果,作为后期处理步骤,以极大地减少对较小量表的造成的型号,以降低对较小规定造成的仿真效应,以实现型号效应。我们发现,包含动态暗能量参数$ w_a $可显着增加创建仿真器的复杂性和费用。在与N体模拟的各种比较中测试了Euclidemulator2的高保真度,以及Halofit,Hmcode和Cosmicemu等替代性快速预测因子。盲目测试成功地针对Euclid旗舰V2.0模拟进行。使用Euclidemulator2模拟的非线性校正因子在1%或更高的水平上,对于0.01 $ H $/MPC $ \ leq K \ LEQ $ 10 $ H $/MPC和$ Z \ leq3 $,而仅高分辨率仅模拟。 euclidemulator2可在https://github.com/miknab/euclidemulator2上公开获得。
We present a new, updated version of the EuclidEmulator (called EuclidEmulator2), a fast and accurate predictor for the nonlinear correction of the matter power spectrum. Percent-level accurate emulation is now supported in the eight-dimensional parameter space of $w_0w_a$CDM$+\sum m_ν$models between redshift $z=0$ and $z=3$ for spatial scales within the range 0.01 $h$/Mpc $\leq k \leq$ 10 $h$/Mpc. In order to achieve this level of accuracy, we have had to improve the quality of the underlying N-body simulations used as training data: (1) we use self-consistent linear evolution of non-dark matter species such as massive neutrinos, photons, dark energy and the metric field, (2) we perform the simulations in the so-called N-body gauge, which allows one to interpret the results in the framework of general relativity, (3) we run over 250 high-resolution simulations with $3000^3$ particles in boxes of 1 (Gpc/$h$)${}^3$ volumes based on paired-and-fixed initial conditions and (4) we provide a resolution correction that can be applied to emulated results as a post-processing step in order to drastically reduce systematic biases on small scales due to residual resolution effects in the simulations. We find that the inclusion of the dynamical dark energy parameter $w_a$ significantly increases the complexity and expense of creating the emulator. The high fidelity of EuclidEmulator2 is tested in various comparisons against N-body simulations as well as alternative fast predictors like Halofit, HMCode and CosmicEmu. A blind test is successfully performed against the Euclid Flagship v2.0 simulation. Nonlinear correction factors emulated with EuclidEmulator2 are accurate at the level of 1% or better for 0.01 $h$/Mpc $\leq k \leq$ 10 $h$/Mpc and $z\leq3$ compared to high-resolution dark matter only simulations. EuclidEmulator2 is publicly available at https://github.com/miknab/EuclidEmulator2 .