Galaxy Cluster Mass Estimation from Stacked Spectroscopic Analysis
Arya Farahi, August E. Evrard, Eduardo Rozo, Eli S. Rykoff, Risa H., Wechsler

TL;DR
This study uses simulated galaxy surveys to evaluate the accuracy of dynamical mass estimates of galaxy clusters from stacked spectroscopic data, accounting for membership, bias, and systematic uncertainties.
Contribution
It introduces a method to accurately estimate cluster masses from stacked spectroscopy, incorporating corrections for mis-centering and velocity bias, validated with simulations.
Findings
Velocity PDF matches observed data.
Halo mass estimates agree within a few percent.
Systematic uncertainties dominate error budget.
Abstract
We use simulated galaxy surveys to study: i) how galaxy membership in redMaPPer clusters maps to the underlying halo population, and ii) the accuracy of a mean dynamical cluster mass, , derived from stacked pairwise spectroscopy of clusters with richness . Using galaxy pairs patterned after the SDSS redMaPPer cluster sample study of Rozo et al. (2015 RMIV), we show that the pairwise velocity PDF of central--satellite pairs with in the simulation matches the form seen in RMIV. Through joint membership matching, we deconstruct the main Gaussian velocity component into its halo contributions, finding that the top-ranked halo contributes of the stacked signal. The halo mass scale inferred by applying the virial scaling of Evrard et al. (2008) to the velocity normalization matches, to within a few percent, the log-mean halo…
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