English

Is There Scale-Dependent Bias in Single-Field Inflation?

Cosmology and Nongalactic Astrophysics 2017-01-10 v2 High Energy Physics - Theory

Abstract

Scale-dependent halo bias due to local primordial non-Gaussianity provides a strong test of single-field inflation. While it is universally understood that single-field inflation predicts negligible scale-dependent bias compared to current observational uncertainties, there is still disagreement on the exact level of scale-dependent bias at a level that could strongly impact inferences made from future surveys. In this paper, we clarify this confusion and derive in various ways that there is exactly zero scale-dependent bias in single-field inflation. Much of the current confusion follows from the fact that single-field inflation does predict a mode coupling of matter perturbations at the level of fNLloc5/3f_{NL}^{loc} \approx -5/3, which naively would lead to scale-dependent bias. However, we show explicitly that this mode coupling cancels out when perturbations are evaluated at a fixed physical scale rather than fixed coordinate scale. Furthermore, we show how the absence of scale-dependent bias can be derived easily in any gauge. This result can then be incorporated into a complete description of the observed galaxy clustering, including the previously studied general relativistic terms, which are important at the same level as scale-dependent bias of order fNLloc1f_{NL}^{loc} \sim 1. This description will allow us to draw unbiased conclusions about inflation from future galaxy clustering data.

Keywords

Cite

@article{arxiv.1504.05935,
  title  = {Is There Scale-Dependent Bias in Single-Field Inflation?},
  author = {Roland de Putter and Olivier Doré and Daniel Green},
  journal= {arXiv preprint arXiv:1504.05935},
  year   = {2017}
}

Comments

25 pages; v2 matches version published in JCAP (only minor changes relative to v1)

R2 v1 2026-06-22T09:20:47.422Z