DYNAMICAL MASS MEASUREMENTS OF CONTAMINATED GALAXY CLUSTERS USING MACHINE LEARNING

被引:45
作者
Ntampaka, M. [1 ]
Trac, H. [1 ]
Sutherland, D. J. [2 ]
Fromenteau, S. [1 ]
Poczos, B. [2 ]
Schneider, J. [2 ]
机构
[1] Carnegie Mellon Univ, Dept Phys, McWilliams Ctr Cosmol, Pittsburgh, PA 15213 USA
[2] Carnegie Mellon Univ, Sch Comp Sci, Pittsburgh, PA 15213 USA
关键词
cosmology: theory; dark matter; galaxies: clusters: general; galaxies: kinematics and dynamics; gravitation; large-scale structure of universe; methods: statistical; DIGITAL SKY SURVEY; SUNYAEV-ZELDOVICH; VELOCITY DISPERSIONS; DARK-MATTER; RECONSTRUCTION PROJECT; PROFILES; BIAS; COSMOLOGY; I; EVOLUTION;
D O I
10.3847/0004-637X/831/2/135
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We study dynamical mass measurements of galaxy clusters contaminated by interlopers and show that a modern machine learning algorithm can predict masses by better than a factor of two compared to a standard scaling relation approach. We create two mock catalogs from Multidark's publicly available N-body MDPL1 simulation, one with perfect galaxy cluster membership information and the other where a simple cylindrical cut around the cluster center allows interlopers to contaminate the clusters. In the standard approach, we use a power-law scaling relation to infer cluster mass from galaxy line-of-sight (LOS) velocity dispersion. Assuming perfect membership knowledge, this unrealistic case produces a wide fractional mass error distribution, with a. width of Delta epsilon approximate to 0.87. Interlopers introduce additional scatter, significantly widening the error distribution further (Delta epsilon approximate to 2.13). We employ the support distribution machine (SDM) class of algorithms to learn from distributions of data to predict single values. Applied to distributions of galaxy observables such as LOS velocity and projected distance from the cluster center, SDM yields better than a factor-of-two improvement (Delta epsilon approximate to 0.67) for the contaminated case. Remarkably, SDM applied to contaminated clusters is better able to recover masses than even the scaling relation approach applied to uncontaminated clusters. We show that the SDM method more accurately reproduces the cluster mass function, making it a valuable tool for employing cluster observations to evaluate cosmological models.
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页数:16
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