Measuring the Deviation from the Linear and Deterministic Bias through Cosmic Gravitational Lensing Effects
Abstract
Since gravitational lensing effects directly probe inhomogeneities of dark matter, lensing-galaxy cross-correlations can provide us important information on the relation between dark matter and galaxy distributions, i.e., the bias. In this paper, we propose a method to measure the stochasticity/nonlinearity of the galaxy bias through correlation studies of the cosmic shear and galaxy number fluctuations. Specifically, we employ the aperture mass statistics to describe the cosmic shear. We divide the foreground galaxy redshift into several bins, where is the redshift of the source galaxies, and calculate the quantity for each redshift bin. Then the ratio of the summation of over the bins to gives a measure of the nonlinear/stochastic bias. Here is the projected surface number density fluctuation of foreground galaxies at redshift , and is the aperture mass from the cosmic-shear analysis. We estimate that for a moderately deep weak-lensing survey with , source galaxy surface number density and a survey area of , the effective -parameter that represents the deviation from the linear and deterministic bias is detectable in the angular range of 1'-10' if . For shallow, wide surveys such as the Sloan Digital Sky Survey with , , and a survey area of , a 10% detection of is possible over the angular range .
Keywords
Cite
@article{arxiv.astro-ph/0308316,
title = {Measuring the Deviation from the Linear and Deterministic Bias through Cosmic Gravitational Lensing Effects},
author = {Z. H. Fan},
journal= {arXiv preprint arXiv:astro-ph/0308316},
year = {2009}
}
Comments
ApJ in press