Galaxy Two-Point Correlation Function in General Relativity
Fulvio Scaccabarozzi, Jaiyul Yoo, Sang Gyu Biern (Zurich)

TL;DR
This paper presents a comprehensive theoretical and numerical analysis of the relativistic galaxy two-point correlation function, highlighting the importance of observer-related effects and relativistic corrections in galaxy clustering measurements.
Contribution
It provides the first complete gauge-invariant expression for the relativistic galaxy correlation function, demonstrating the absence of infrared divergences and quantifying relativistic effects beyond standard models.
Findings
Observer position effects dominate relativistic contributions.
Relativistic effects cause a few percent systematic errors beyond BAO scales.
Theoretical predictions are validated through numerical computations.
Abstract
We perform theoretical and numerical studies of the full relativistic two-point galaxy correlation function, considering the linear-order scalar and tensor perturbation contributions and the wide-angle effects. Using the gauge-invariant relativistic description of galaxy clustering and accounting for the contributions at the observer position, we demonstrate that the complete theoretical expression is devoid of any long-mode contributions from scalar or tensor perturbations and it lacks the infrared divergences in agreement with the equivalence principle. By showing that the gravitational potential contribution to the correlation function converges in the infrared, our study justifies an IR cut-off in computing the gravitational potential contribution. Using the full gauge-invariant expression, we numerically compute the galaxy two-point correlation function…
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