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Separate universe void bias

机译:单独的宇宙void偏见

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Voids have emerged as a novel probe of cosmology and large-scale structure. These regions of extreme underdensity are sensitive to physics beyond the standard model of cosmology and can potentially be used as a testing ground to constrain new physics. We present the first determination of the linear void bias measured in separate universe simulations. Our methods are validated by comparing the separate universe response bias with the clustering bias of voids. We find excellent agreement between the two methods for voids identified in the halo field and the down-sampled dark matter field. For voids traced by halos, we identify two different contributions to the bias. The first is due to the bias of the underlying halo field used to identify voids, while the second we attribute to the dynamical impact of long-wavelength density perturbations on void formation and expansion. By measuring these contributions individually, we demonstrate that their sum is consistent with the total void bias. We also measure the void profiles in our simulations, and determine their separate universe response. These can be interpreted as the sensitivity of the profiles to the background density of the Universe.
机译:空隙已经成为宇宙学和大规模结构的新型探针。这些极端不明度的区域对超出宇宙标准模型的物理学敏感,并且可能被用作约束新物理学的测试场。我们介绍了在单独的宇宙模拟中测量的线性空隙偏差的第一次确定。通过将单独的宇宙响应偏差与空隙的聚类偏差进行比较来验证我们的方法。我们在光环田中鉴定的空隙和下采样的暗物质场中识别的两种方法之间找到了很好的一致性。对于哈索斯追踪的空隙,我们向偏见确定了两种不同的贡献。第一个是由于用于识别空隙的底层光环域的偏差,而第二个我们将长波长密度扰动的动态冲击归因于在空隙形成和膨胀上的动态冲击。通过单独测量这些贡献,我们证明了他们的总和与总空隙偏差一致。我们还测量了我们的模拟中的空隙简档,并确定了它们的单独宇宙响应。这些可以被解释为概况的概况的灵敏度。

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