论文标题

在红移校准中传播样品方差不确定性:模拟,理论和应用COSMOS2015数据

Propagating sample variance uncertainties in redshift calibration: simulations, theory and application to the COSMOS2015 data

论文作者

Sánchez, Carles, Raveri, Marco, Alarcon, Alex, Bernstein, Gary M.

论文摘要

银河调查的宇宙学分析取决于对其星系样品的红移分布的了解。这通常来自光谱和/或多种频段光度校准器对一小片天空的调查。校准器样品的红移分布中的不确定性包括射击噪声或泊松采样误差的贡献,但是,鉴于它们探测的较小体积,它们是由大规模结构引入的样品方差主导的。红移的不确定性已被证明是对宇宙学推断的系统不确定性的主要贡献之一,从弱透镜和星系聚类中,必须通过分析来传播它们。在这项工作中,我们研究了样品方差对从理论到模拟再到COSMOS2015数据集的小区域红移调查的影响。我们提出了一种三步的Dirichlet方法,用于重新采样基于调查的红移校准分布,以使射击噪声和样品方差不确定性同时传播。该方法可以在不同的红移来源上适应不同级别的先验信心。该方法可以应用于具有已知红移和表型的任何校准样本(即自组织图中的细胞,或某种其他离散光度空间的方法),并提供了一种简单的方法,可以将先前的红移不确定性传播到宇宙分析中。作为一个有效的示例,我们将完整方案应用于COSMOS2015数据集,为此,我们还提供了一种新的,有原则的SOM算法,旨在处理嘈杂的光度数据。我们提供了COSMOS2015星系的结果重采样的目录。

Cosmological analyses of galaxy surveys rely on knowledge of the redshift distribution of their galaxy sample. This is usually derived from a spectroscopic and/or many-band photometric calibrator survey of a small patch of sky. The uncertainties in the redshift distribution of the calibrator sample include a contribution from shot noise, or Poisson sampling errors, but, given the small volume they probe, they are dominated by sample variance introduced by large-scale structures. Redshift uncertainties have been shown to constitute one of the leading contributions to systematic uncertainties in cosmological inferences from weak lensing and galaxy clustering, and hence they must be propagated through the analyses. In this work, we study the effects of sample variance on small-area redshift surveys, from theory to simulations to the COSMOS2015 data set. We present a three-step Dirichlet method of resampling a given survey-based redshift calibration distribution to enable the propagation of both shot noise and sample variance uncertainties. The method can accommodate different levels of prior confidence on different redshift sources. This method can be applied to any calibration sample with known redshifts and phenotypes (i.e. cells in a self-organizing map, or some other way of discretizing photometric space), and provides a simple way of propagating prior redshift uncertainties into cosmological analyses. As a worked example, we apply the full scheme to the COSMOS2015 data set, for which we also present a new, principled SOM algorithm designed to handle noisy photometric data. We make available a catalog of the resulting resamplings of the COSMOS2015 galaxies.

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