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MASKED AREAS IN SHEAR PEAK STATISTICS: A FORWARD MODELING APPROACH

机译:剪切峰统计中的蒙版区域:一种前向建模方法

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The statistics of shear peaks have been shown to provide valuable cosmological information beyond the power spectrum, and will be an important constraint of models of cosmology in forthcoming astronomical surveys. Surveys include masked areas due to bright stars, bad pixels etc., which must be accounted for in producing constraints on cosmology from shear maps. We advocate a forward-modeling approach, where the impacts of masking and other survey artifacts are accounted for in the theoretical prediction of cosmological parameters, rather than correcting survey data to remove them. We use masks based on the Deep Lens Survey, and explore the impact of up to 37% of the survey area being masked on LSST and DES-scale surveys. By reconstructing maps of aperture mass the masking effect is smoothed out, resulting in up to 14% smaller statistical uncertainties compared to simply reducing the survey area by the masked area. We show that, even in the presence of large survey masks, the bias in cosmological parameter estimation produced in the forward-modeling process is ≈1%, dominated by bias caused by limited simulation volume. We also explore how this potential bias scales with survey area and evaluate how much small survey areas are impacted by the differences in cosmological structure in the data and simulated volumes, due to cosmic variance.
机译:剪切峰的统计数据已经显示出可以提供超出功率谱的有价值的宇宙学信息,并且将在即将进行的天文调查中成为宇宙学模型的重要约束。调查包括由于明亮的恒星,不良像素等导致的蒙版区域,在通过剪切图对宇宙学产生约束时必须加以考虑。我们提倡一种前向建模方法,该方法在对宇宙学参数的理论预测中考虑了掩蔽和其他测量伪影的影响,而不是校正测量数据以将其删除。我们使用基于“深镜头调查”的遮罩,并探索LSST和DES规模的调查中多达37%的被遮罩调查区域的影响。通过重建孔径质量图,掩蔽效果得以平滑,与仅通过掩蔽区域减少调查区域相比,统计不确定性最多减少14%。我们显示,即使存在较大的调查蒙版,在正向建模过程中产生的宇宙学参数估计中的偏差仍为≈1%,主要由有限的模拟量引起的偏差所致。我们还探讨了这种潜在偏差如何随调查区域而变化,并评估了由于宇宙方差而导致的数据和模拟体积中的宇宙学结构差异对多少个小的调查区域产生了影响。

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