Observational Constraints on Higher Order Clustering up to $z\simeq 1
Abstract
Constraints on the validity of the hierarchical gravitational instability theory and the evolution of biasing are presented based upon measurements of higher order clustering statistics in the Deeprange Survey, a catalog of galaxies with derived from a KPNO 4m CCD imaging survey of a contiguous region. We compute the 3-point and 4-point angular correlation functions using a direct estimation for the former and the counts-in-cells technique for both. The skewness decreases by a factor of as galaxy magnitude increases over the range (). This decrease is consistent with a small {\it increase} of the bias with increasing redshift, but not by more than a factor of 2 for the highest redshifts probed. Our results are strongly inconsistent, at about the level, with typical cosmic string models in which the initial perturbations follow a non-Gaussian distribution - such models generally predict an opposite trend in the degree of bias as a function of redshift. We also find that the scaling relation between the 3-point and 4-point correlation functions remains approximately invariant over the above magnitude range. The simplest model that is consistent with these constraints is a universe in which an initially Gaussian perturbation spectrum evolves under the influence of gravity combined with a low level of bias between the matter and the galaxies that decreases slightly from to the current epoch.
Keywords
Cite
@article{arxiv.astro-ph/0008131,
title = {Observational Constraints on Higher Order Clustering up to $z\simeq 1},
author = {István Szapudi and Marc Postman and Tod R. Lauer and William Oegerle},
journal= {arXiv preprint arXiv:astro-ph/0008131},
year = {2009}
}
Comments
28 pages, 4 figures included, ApJ, accepted, minor changes