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Rapid Bayesian position reconstruction for gravitational-wave transients

L. P. SingerLarry R. Price

Abstract

Within the next few years, Advanced LIGO and Virgo should detect gravitational waves from binary neutron star and neutron star-black hole mergers. These sources are also predicted to power a broad array of electromagnetic transients. Because the electromagnetic signatures can be faint and fade rapidly, observing them hinges on rapidly inferring the sky location from the gravitational-wave observations. Markov chain Monte Carlo methods for gravitational-wave parameter estimation can take hours or more. We introduce BAYESTAR, a rapid, Bayesian, non-Markov chain Monte Carlo sky localization algorithm that takes just seconds to produce probability sky maps that are comparable in accuracy to the full analysis. Prompt localizations from BAYESTAR will make it possible to search electromagnetic counterparts of compact binary mergers.

Pulsars and Gravitational Waves ResearchGamma-ray bursts and supernovaeMagnetic confinement fusion researchLIGOGravitational wavePhysicsSkyMarkov chain Monte CarloNeutron starMonte Carlo methodBayesian probabilityBinary black holeBinary number

Funding

  • National Science Foundation
  • University of Wisconsin-Milwaukee
  • Massachusetts Institute of Technology
  • California Institute of Technology
  • Aspen Center for Physics
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Classical and Quantum Gravity · 2014 · 3,931 citations
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