Upper Limits on the Isotropic Gravitational-Wave Background from Advanced LIGO's and Advanced Virgo's Third Observing Run
The LIGO Scientific Collaboration, the Virgo Collaboration, and the, KAGRA Collaboration: R. Abbott, T. D. Abbott, S. Abraham, F. Acernese, K., Ackley, A. Adams, C. Adams, R. X. Adhikari, V. B. Adya, C. Affeldt, D., Agarwal, M. Agathos, K. Agatsuma, N. Aggarwal, O. D. Aguiar

TL;DR
This paper presents new upper limits on the isotropic gravitational-wave background using combined data from Advanced LIGO and Virgo's third observing run, improving previous constraints and exploring alternative polarization modes.
Contribution
It provides the first combined LIGO-Virgo upper limits on the GWB, including scalar and vector modes, and demonstrates the potential for joint analysis with individual merger observations.
Findings
Upper limits on GWB energy density are established for various spectral models.
No evidence of correlated magnetic noise was found in the data.
The combined analysis improves constraints on the binary black hole merger rate.
Abstract
We report results of a search for an isotropic gravitational-wave background (GWB) using data from Advanced LIGO's and Advanced Virgo's third observing run (O3) combined with upper limits from the earlier O1 and O2 runs. Unlike in previous observing runs in the advanced detector era, we include Virgo in the search for the GWB. The results are consistent with uncorrelated noise, and therefore we place upper limits on the strength of the GWB. We find that the dimensionless energy density at the 95% credible level for a flat (frequency-independent) GWB, using a prior which is uniform in the log of the strength of the GWB, with 99% of the sensitivity coming from the band 20-76.6 Hz; at 25 Hz for a power-law GWB with a spectral index of 2/3 (consistent with expectations for compact binary coalescences), in the band 20-90.6 Hz;…
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