论文标题
高斯功率光谱的足够可能性,可从即将进行的弱透镜调查中获得准确的宇宙学
Sufficiency of a Gaussian power spectrum likelihood for accurate cosmology from upcoming weak lensing surveys
论文作者
论文摘要
我们研究了高斯的可能性是否足以从弱晶状体,星系聚类及其互相关的欧几里得的组合层析成像谱分析中获得准确的参数约束。测试其在全天空上的性能与Wishart分布,这是高斯田地假设下的确切可能性,我们发现高斯的可能性返回准确的参数约束。这种准确性对于可能性分析中的选择是可靠的,包括基准宇宙学的选择,包括的尺度范围和随机噪声水平。我们通过评估其边际分布和依赖性结构的关节剪裁可能性的额外非高斯性,将结果扩展到剪裁。我们发现,剪裁的可能性比全天空的可能性更非高斯,但在某种程度上不足以将明显的不准确性引入使用高斯可能性获得的参数约束中。我们的结果不应受高斯磁场的假设的影响,因为这种近似仅在小尺度上变得不准确,这反过来对应于任何可能性的非高斯性的极限。但是,我们将与N体弱透镜模拟进行比较,并没有发现可能存在明显额外非高斯性的证据。我们的结果表明,高斯的可能性足以容纳来自IV级弱透镜调查的功率谱的鲁棒参数约束。
We investigate whether a Gaussian likelihood is sufficient to obtain accurate parameter constraints from a Euclid-like combined tomographic power spectrum analysis of weak lensing, galaxy clustering and their cross-correlation. Testing its performance on the full sky against the Wishart distribution, which is the exact likelihood under the assumption of Gaussian fields, we find that the Gaussian likelihood returns accurate parameter constraints. This accuracy is robust to the choices made in the likelihood analysis, including the choice of fiducial cosmology, the range of scales included, and the random noise level. We extend our results to the cut sky by evaluating the additional non-Gaussianity of the joint cut-sky likelihood in both its marginal distributions and dependence structure. We find that the cut-sky likelihood is more non-Gaussian than the full-sky likelihood, but at a level insufficient to introduce significant inaccuracy into parameter constraints obtained using the Gaussian likelihood. Our results should not be affected by the assumption of Gaussian fields, as this approximation only becomes inaccurate on small scales, which in turn corresponds to the limit in which any non-Gaussianity of the likelihood becomes negligible. We nevertheless compare against N-body weak lensing simulations and find no evidence of significant additional non-Gaussianity in the likelihood. Our results indicate that a Gaussian likelihood will be sufficient for robust parameter constraints with power spectra from Stage IV weak lensing surveys.