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A Parallelized Bayesian Approach To Accelerated Gravitational-Wave Background Characterization

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arxiv 2202.08293 v2 pith:IL7EIW7J submitted 2022-02-16 gr-qc astro-ph.GAastro-ph.IM

A Parallelized Bayesian Approach To Accelerated Gravitational-Wave Background Characterization

classification gr-qc astro-ph.GAastro-ph.IM
keywords backgroundtechniquecharacterizationdatasetspulsarsstochasticapproachbayesian
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The characterization of nanohertz-frequency gravitational waves (GWs) with pulsar-timing arrays requires a continual expansion of datasets and monitored pulsars. Whereas detection of the stochastic GW background is predicated on measuring a distinctive pattern of inter-pulsar correlations, characterizing the background's spectrum is driven by information encoded in the power spectra of the individual pulsars' time series. We propose a new technique for rapid Bayesian characterization of the stochastic GW background that is fully parallelized over pulsar datasets. This Factorized Likelihood (FL) technique empowers a modular approach to parameter estimation of the GW background, multi-stage model selection of a spectrally-common stochastic process and quadrupolar inter-pulsar correlations, and statistical cross-validation of measured signals between independent pulsar sub-arrays. We demonstrate the equivalence of this technique's efficacy with the full pulsar-timing array likelihood, yet at a fraction of the required time. Our technique is fast, easily implemented, and trivially allows for new data and pulsars to be combined with legacy datasets without re-analysis of the latter.

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