Modeling Gravitational Wave Bias from 3D Power Spectra of Spectroscopic Surveys

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Main Authors: Hosseini, Dorsa Sadat, Dehghani, Amir, Kim, J. Leo, Krolewski, Alex, Mukherjee, Suvodip, Geshnizjani, Ghazal
Format: Preprint
Published: 2025
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author Hosseini, Dorsa Sadat
Dehghani, Amir
Kim, J. Leo
Krolewski, Alex
Mukherjee, Suvodip
Geshnizjani, Ghazal
author_facet Hosseini, Dorsa Sadat
Dehghani, Amir
Kim, J. Leo
Krolewski, Alex
Mukherjee, Suvodip
Geshnizjani, Ghazal
contents We present a framework for relating gravitational wave (GW) sources to the astrophysical properties of spectroscopic galaxy samples. We show how this can enable using clustering measurements of gravitational wave (GW) sources to infer the relationship between the GW sources and the astrophysical properties of their host galaxies. We accomplish this by creating mock GW catalogs from the spectroscopic Sloan Digital Sky Survey (SDSS) DR7 galaxy survey. We populate the GWs using a joint host-galaxy probability function defined over stellar mass, star formation rate (SFR), and metallicity. This probability is modeled as the product of three broken power-law distributions, each with a turnover point motivated by astrophysical processes governing the relation between current-day galaxy properties and BBH mergers, such as galaxy quenching and BBH delay time. Our results show that GW bias is most sensitive to host-galaxy probability dependence on stellar mass, with increases of up to $\sim O (10)\%$ relative to galaxy bias as the stellar mass pivot scale rises. We also find a notable relationship between GW bias and SFR: when the host-galaxy probability favors low-SFR galaxies, the GW bias significantly increases. In contrast, we observe no strong correlation between GW bias and metallicity. These findings suggest that the spatial clustering of GW sources is primarily driven by the stellar mass and SFR of their host galaxies and shows how GW bias measurements can inform models of the host-galaxy probability function.
format Preprint
id arxiv_https___arxiv_org_abs_2506_11201
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Modeling Gravitational Wave Bias from 3D Power Spectra of Spectroscopic Surveys
Hosseini, Dorsa Sadat
Dehghani, Amir
Kim, J. Leo
Krolewski, Alex
Mukherjee, Suvodip
Geshnizjani, Ghazal
Astrophysics of Galaxies
Cosmology and Nongalactic Astrophysics
High Energy Astrophysical Phenomena
We present a framework for relating gravitational wave (GW) sources to the astrophysical properties of spectroscopic galaxy samples. We show how this can enable using clustering measurements of gravitational wave (GW) sources to infer the relationship between the GW sources and the astrophysical properties of their host galaxies. We accomplish this by creating mock GW catalogs from the spectroscopic Sloan Digital Sky Survey (SDSS) DR7 galaxy survey. We populate the GWs using a joint host-galaxy probability function defined over stellar mass, star formation rate (SFR), and metallicity. This probability is modeled as the product of three broken power-law distributions, each with a turnover point motivated by astrophysical processes governing the relation between current-day galaxy properties and BBH mergers, such as galaxy quenching and BBH delay time. Our results show that GW bias is most sensitive to host-galaxy probability dependence on stellar mass, with increases of up to $\sim O (10)\%$ relative to galaxy bias as the stellar mass pivot scale rises. We also find a notable relationship between GW bias and SFR: when the host-galaxy probability favors low-SFR galaxies, the GW bias significantly increases. In contrast, we observe no strong correlation between GW bias and metallicity. These findings suggest that the spatial clustering of GW sources is primarily driven by the stellar mass and SFR of their host galaxies and shows how GW bias measurements can inform models of the host-galaxy probability function.
title Modeling Gravitational Wave Bias from 3D Power Spectra of Spectroscopic Surveys
topic Astrophysics of Galaxies
Cosmology and Nongalactic Astrophysics
High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2506.11201