论文标题

在电离时期,联合测量星系光度函数和大规模场密度

A joint measurement of galaxy luminosity functions and large-scale field densities during the Epoch of Reionization

论文作者

Trapp, A. C., Furlanetto, Steven R.

论文摘要

当前一代望远镜的最令人兴奋的进步之一是在电离时期对星系的检测,使用将这些仪器推向其极限的深层田地。为了从中提取尽可能多的信息,必须优化我们对这些领域的分析。特别是,尽管这种大规模的结构驱动了宇宙黎明期间的星系形成和电源,但测量了有关大规模暗物质密度波动的星系光度函数的标准方法。测量这些密度将提供可观察到的基岩,将星系调查连接到电离过程和结构形成的理论模型。在这里,我们使用现有的哈勃深场数据同时拟合通用的光度函数,并测量每个哈勃深场的大规模密度,$ z = $ 6--8,直接将先验直接掺入大规模密度场和银河系偏见。我们对通用光度函数的拟合与以前的方法一致,但细节上有所不同。我们第一次测量调查场的潜在密度,包括最高/低密度的哈勃田地。我们表明,密度的分布与当前对宇宙方差的预测一致。对James Webb太空望远镜的可能性将仅17个字段进行分析,该样本将在可比较(或更好)的深度和更高的红移时测量数百个字段。

One of the most exciting advances of the current generation of telescopes has been the detection of galaxies during the epoch of reionization, using deep fields that have pushed these instruments to their limits. It is essential to optimize our analyses of these fields in order to extract as much information as possible from them. In particular, standard methods of measuring the galaxy luminosity function discard information on large-scale dark matter density fluctuations, even though this large-scale structure drives galaxy formation and reionization during the Cosmic Dawn. Measuring these densities would provide a bedrock observable, connecting galaxy surveys to theoretical models of the reionization process and structure formation. Here, we use existing Hubble deep field data to simultaneously fit the universal luminosity function and measure large-scale densities for each Hubble deep field at $z =$ 6--8 by directly incorporating priors on the large-scale density field and galaxy bias. Our fit of the universal luminosity function is consistent with previous methods but differs in the details. For the first time, we measure the underlying densities of the survey fields, including the most over/under-dense Hubble fields. We show that the distribution of densities is consistent with current predictions for cosmic variance. This analysis on just 17 fields is a small sample of what will be possible with the James Webb Space Telescope, which will measure hundreds of fields at comparable (or better) depths and at higher redshifts.

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