On the Amplitude and Stokes Parameters of a Stochastic Gravitational-Wave Background
arXiv:1808.05920 · doi:10.1093/mnras/stz1022
Abstract
The direct detection of gravitational waves has provided new opportunities for studying the universe, but also new challenges, such as the detection and characterization of stochastic gravitational-wave backgrounds at different gravitational-wave frequencies. In this paper we examine two different methods for their description, one based on the amplitude of a gravitational-wave signal and one on its Stokes parameters. We find that the Stokes parameters are able to describe anisotropic and correlated backgrounds, whereas the usual power spectra of the amplitudes cannot -- i.e. the Stokes spectra are sensitive to properties such as the spatial distribution of the gravitational-wave sources in a realistic backgrounds.
18 pages, 10 figures
References in corpus (9)
- The NumPy array: a structure for efficient numerical computation
- White Dwarf Mass Distribution in the SDSS
- The Local Nanohertz Gravitational-Wave Landscape From Supermassive Black Hole Binaries
- Measuring the parameters of massive black hole binary systems with Pulsar Timing Array observations of gravitational waves
- Mapping gravitational-wave backgrounds using methods from CMB analysis: Application to pulsar timing arrays
- Anomalous CMB polarization and gravitational chirality
- Detecting gravitational waves from mountains on neutron stars in the Advanced Detector Era
- Polarization analysis of gravitational-wave backgrounds from the correlation signals of ground-based interferometers: measuring a circular-polarization mode
- Correlation between opposite-helicity gravitons: Imprints on gravity-wave and microwave backgrounds
Cited by in corpus (23)
- The Astrophysics of Nanohertz Gravitational Waves
- From Bright Binaries To Bumpy Backgrounds: Mapping Realistic Gravitational Wave Skies With Pulsar-Timing Arrays
- Variance of the Hellings-Downs Correlation
- Pulsar-timing arrays, astrometry, and gravitational waves
- Estimating the angular power spectrum of the gravitational-wave background in the presence of shot noise
- The of gravitational wave background experiments
- Maximum likelihood map-making with the Laser Interferometer Space Antenna
- Prospects for Future Binary Black Hole GW Studies in Light of PTA Measurements
- The search for anisotropy in the gravitational-wave background with pulsar-timing arrays
- Parametrizing gravitational-wave polarizations
- Dissecting the Stochastic Gravitational Wave Background with Astrometry
- Phase decoherence of gravitational wave backgrounds
- Searching for anisotropic stochastic gravitational-wave backgrounds with constellations of space-based interferometers
- Pulsar timing array source ensembles
- The Probability Distribution of Astrophysical Gravitational-Wave Background Fluctuations
- Detectability of the cross-correlation between CMB lensing and stochastic GW background from compact object mergers
- Probing parity-odd bispectra with anisotropies of GW modes
- Boltzmann equations for astrophysical Stochastic Gravitational Wave Backgrounds scattering off of massive objects
- Gravitational wave signals in the deci-Hz range from neutrinos during the proto-neutron star cooling phase
- Almanac: MCMC-based signal extraction of power spectra and maps on the sphere
- Frequency-Domain Distribution of Astrophysical Gravitational-Wave Backgrounds
- Polarization Properties of the Electromagnetic Response to High-frequency Gravitational Wave
- Finite Populations & Finite Time: The Non-Gaussianity of a Gravitational Wave Background