Constraining Primordial Non-Gaussianity With the Abundance of High Redshift Clusters
Abstract
We show how observations of the evolution of the galaxy cluster number abundance can be used to constrain primordial non-Gaussianity in the universe. We carry out a maximum likelihood analysis incorporating a number of current datasets and accounting for a wide range of sources of systematic error. Under the assumption of Gaussianity, the current data prefer a universe with matter density and are inconsistent with at the level. If we assume , the predicted degree of cluster evolution is consistent with the data for non-Gaussian models where the primordial fluctuations have at least two times as many peaks of height or more as a Gaussian distribution does. These results are robust to almost all sources of systematic error considered: in particular, the Gaussian case can only be reconciled with the data if a number of systematic effects conspire to modify the analysis in the right direction. Given an independent measurement of , the techniques described here represent a powerful tool with which to constrain non-Gaussianity in the primordial universe, independent of specific details of the non-Gaussian physics. We discuss the prospects and strategies for improving the constraints with future observations.
Keywords
Cite
@article{arxiv.astro-ph/9906156,
title = {Constraining Primordial Non-Gaussianity With the Abundance of High Redshift Clusters},
author = {James Robinson and Eric Gawiser and Joseph Silk},
journal= {arXiv preprint arXiv:astro-ph/9906156},
year = {2009}
}
Comments
Minor revisions to match published ApJ version, 14 pages emulateapj