Detection methods for stochastic gravitational-wave backgrounds: a unified treatment
Методы обнаружения стохастических гравитационно-волновых фонов: унифицированный подход
2017-04-04
SCID: 54.1/qaks4m3h
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Bayesian and frequentist searchesdetector response functionslaser interferometerspulsar timing arraysstochastic gravitational-wave backgrounds
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Abstract (AI)
We review detection methods that are currently in use or have been proposed to search for a stochastic background of gravitational radiation. We consider both Bayesian and frequentist searches using ground-based and space-based laser interferometers, spacecraft Doppler tracking, and pulsar timing arrays; and we allow for anisotropy, non-Gaussianity, and non-standard polarization states. Our focus is on relevant data analysis issues, and not on the particular astrophysical or early Universe sources that might give rise to such backgrounds. We provide a unified treatment of these searches at the level of detector response functions, detection sensitivity curves, and, more generally, at the level of the likelihood function, since the choice of signal and noise models and prior probability distributions are actually what define the search. Pedagogical examples are given whenever possible to compare and contrast different approaches. We have tried to make the article as self-contained and comprehensive as possible, targeting graduate students and new researchers looking to enter this field.
Key Findings
1
It treats ground- and space-based laser interferometers, spacecraft Doppler tracking, and pulsar timing arrays within a common analysis perspective.
2
Pedagogical comparisons clarify how different detection methods and modeling choices relate, with emphasis on data-analysis issues rather than specific astrophysical sources.
3
Searches are unified through detector response functions, sensitivity curves, and likelihood functions determined by signal, noise, and prior models.
4
The framework accommodates anisotropic, non-Gaussian, and non-standard-polarization gravitational-wave backgrounds.
5
The paper provides a unified framework for stochastic gravitational-wave searches across Bayesian and frequentist approaches.
Research Object
stochastic gravitational-wave backgrounds detected with interferometric, Doppler-tracking, and pulsar-timing observatories
Research Subject
Bayesian and frequentist detection and data-analysis methods, including sensitivity, detector responses, and likelihood modeling for anisotropic, non-Gaussian, and non-standard-polarization backgrounds
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2017-04-04
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