论文标题

使用星系 - 果胶镜头和聚类幅度的儿童1000,老板和2Dflens测试重力

Testing gravity using galaxy-galaxy lensing and clustering amplitudes in KiDS-1000, BOSS and 2dFLenS

论文作者

Blake, Chris, Amon, Alexandra, Asgari, Marika, Bilicki, Maciej, Dvornik, Andrej, Erben, Thomas, Giblin, Benjamin, Glazebrook, Karl, Heymans, Catherine, Hildebrandt, Hendrik, Joachimi, Benjamin, Joudaki, Shahab, Kannawadi, Arun, Kuijken, Konrad, Lidman, Chris, Parkinson, David, Shan, HuanYuan, Tröster, Tilman, Busch, Jan Luca van den, Wolf, Christian, Wright, Angus H.

论文摘要

宇宙学量表上的重力物理学既影响大规模结构的组装速率,又影响背景光的重力镜头。通过比较这些不同观察性特征的幅度,我们可以构建可以区分一般相对性与其潜在修改的测试。我们使用了最新的弱重力镜头数据集,包括KILO-AMESSS KIDS-1000,以及重叠的Galaxy Spectroscic Redshift Redshift Surveys Boss和2Dflens,以执行最精确的现有振幅比率测试。我们以15-20%的误差测量了相关的E_G统计量,在五个dz = 0.1层析成像红移箱中,范围为0.2 <z <0.7,在高达100 mpc/h的缩放范围内。这些测量值的规模独立性和红移依赖性与具有物质密度omega_m = 0.27 +/- 0.04的宇宙中一般相对性的理论期望一致。我们证明了我们的结果与不同的分析选择是可靠的,包括用于纠正源光度红移误差影响的方案,并比较角度和投影的星系 - 果胶镜头镜头统计的性能。

The physics of gravity on cosmological scales affects both the rate of assembly of large-scale structure, and the gravitational lensing of background light through this cosmic web. By comparing the amplitude of these different observational signatures, we can construct tests that can distinguish general relativity from its potential modifications. We used the latest weak gravitational lensing dataset from the Kilo-Degree Survey, KiDS-1000, in conjunction with overlapping galaxy spectroscopic redshift surveys BOSS and 2dFLenS, to perform the most precise existing amplitude-ratio test. We measured the associated E_G statistic with 15-20% errors, in five dz = 0.1 tomographic redshift bins in the range 0.2 < z < 0.7, on projected scales up to 100 Mpc/h. The scale-independence and redshift-dependence of these measurements are consistent with the theoretical expectation of general relativity in a Universe with matter density Omega_m = 0.27 +/- 0.04. We demonstrate that our results are robust against different analysis choices, including schemes for correcting the effects of source photometric redshift errors, and compare the performance of angular and projected galaxy-galaxy lensing statistics.

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