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Regimbau, Research in Astronomy and Astrophysics 11, 369 (2011), arXiv:1101.2762 [astro-ph.CO]

7 Pith papers cite this work. Polarity classification is still indexing.

7 Pith papers citing it
abstract

A gravitational wave stochastic background of astrophysical origin may have resulted from the superposition of a large number of unresolved sources since the beginning of stellar activity. Its detection would put very strong constrains on the physical properties of compact objects, the initial mass function or the star formation history. On the other hand, it could be a 'noise' that would mask the stochastic background of cosmological origin. We review the main astrophysical processes able to produce a stochastic background and discuss how it may differ from the primordial contribution by its statistical properties. Current detection methods are also presented.

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representative citing papers

High-Power AM-CW Lunar Laser Ranging as a $\mu$Hz SGWB Detector

gr-qc · 2026-05-04 · unverdicted · novelty 6.0

AM-CW lunar laser ranging achieves μHz SGWB sensitivity of 5.29×10^{-9} D_cov (80 μm range uncertainty) or 2.07×10^{-9} D_cov (50 μm) over 5 years, with discovery possible if covariance degradation stays below ~3.6-13.7.

High-Quality Axion Dark Matter at Gravitational Wave Interferometers

hep-ph · 2025-09-17 · unverdicted · novelty 5.0

In gauged U(1) completions enabling high-quality axion dark matter, cosmic string loops generate a stochastic gravitational wave background with an infrared break frequency that exceeds foregrounds above 10^14 GeV breaking scales and offers a probe at interferometers.

Science Case for the Einstein Telescope

astro-ph.CO · 2019-12-05 · unverdicted · novelty 3.0

The Einstein Telescope will enable gravitational-wave observations up to cosmological distances, opening avenues for discoveries in astrophysics, cosmology, and fundamental physics.

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Showing 7 of 7 citing papers.