Mapping gravitational-wave backgrounds using methods from CMB analysis: Application to pulsar timing arrays
arXiv:1406.4664 · doi:10.1103/PhysRevD.90.082001
Abstract
We describe an alternative approach to the analysis of gravitational-wave backgrounds, based on the formalism used to characterise the polarisation of the cosmic microwave background. In contrast to standard analyses, this approach makes no assumptions about the nature of the background and so has the potential to reveal much more about the physical processes that generated it. An arbitrary background can be decomposed into modes whose angular dependence on the sky is given by gradients and curls of spherical harmonics. We derive the pulsar timing overlap reduction functions for the individual modes, which are given by simple combinations of spherical harmonics evaluated at the pulsar locations. We show how these can be used to recover the components of an arbitrary background, giving explicit results for both isotropic and anisotropic uncorrelated backgrounds. We also find that the response of a pulsar timing array to curl modes is identically zero, so half of the gravitational-wave sky will never be observed using pulsar timing, no matter how many pulsars are included in the array. An isotropic, unpolarised and uncorrelated background can be accurately represented using only three modes, and so a search of this type will be only slightly more complicated than the standard cross-correlation search using the Hellings and Downs overlap reduction function. However, by measuring the components of individual modes of the background and checking for consistency with isotropy, this approach has the potential to reveal much more information. Each individual mode on its own describes a background that is correlated between different points on the sky. A measurement of the components that indicates the presence of correlations in the background on large angular scales would suggest startling new physics.
48 pages, 16 figures, to appear in Phys. Rev. D; v2 contains various changes in response to the referee report and is consistent with published version
References in corpus (9)
- TEMPO2, a new pulsar timing package. I: Overview
- Tempo2, a new pulsar timing package. II: The timing model and precision estimates
- Gravitational waves from resolvable massive black hole binary systems and observations with Pulsar Timing Arrays
- Gravitational-Wave Stochastic Background from Kinks and Cusps on Cosmic Strings
- On measuring the gravitational-wave background using Pulsar Timing Arrays
- Measuring the parameters of massive black hole binary systems with Pulsar Timing Array observations of gravitational waves
- TEMPO2, a new pulsar timing package. III: Gravitational wave simulation
- Detecting a Stochastic Gravitational-Wave Background: The Overlap Reduction Function
- Weighing The Evidence For A Gravitational-Wave Background In The First International Pulsar Timing Array Data Challenge
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- The Local Nanohertz Gravitational-Wave Landscape From Supermassive Black Hole Binaries
- Time-domain Implementation of the Optimal Cross-Correlation Statistic for Stochastic Gravitational-Wave Background Searches in Pulsar Timing Data
- Variance of the Hellings-Downs Correlation
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- Forecasting pulsar timing array sensitivity to anisotropy in the stochastic gravitational wave background
- Pulsar and cosmic variances of pulsar timing-array correlation measurements of the stochastic gravitational wave background
- Chirality of the gravitational-wave background and pulsar-timing arrays
- Answers to frequently asked questions about the pulsar timing array Hellings and Downs curve
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- Pulsar-timing measurement of the circular polarization of the stochastic gravitational-wave background
- A Test of Gravity with Pulsar Timing Arrays
- Hunting the stochastic gravitational wave background in pulsar timing array cross correlations through theoretical uncertainty
- Dissecting the Stochastic Gravitational Wave Background with Astrometry
- Ephemeris Errors and the Gravitational Wave Signal: Harmonic Mode Coupling in Pulsar Timing Array Searches
- Testing gravity with cosmic variance-limited pulsar timing array correlations
- Anisotropy of phase transition gravitational wave and its implication for primordial seeds of the Universe
- Constraints on the velocity of gravitational waves from NANOGrav 15-year data set
- The MeerKAT Pulsar Timing Array: Maps of the gravitational-wave sky with the 4.5 year data release
- The NANOGrav 15 yr Data Set: Looking for Signs of Discreteness in the Gravitational-wave Background
- Searching for anisotropic stochastic gravitational-wave backgrounds with constellations of space-based interferometers
- Beyond the Hellings-Downs curve: Non-Einsteinian gravitational waves in pulsar timing array correlations
- Timing-residual power spectrum of a polarized stochastic gravitational-wave background in pulsar-timing-array observation
- Pulsar Timing Array Harmonic Analysis and Source Angular Correlations
- Redshift-space fluctuations in stochastic gravitational wave background
- Generalized optimal statistic for characterizing multiple correlated signals in pulsar timing arrays
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- Optimal reconstruction of the Hellings and Downs correlation
- Measuring kinematic anisotropies with pulsar timing arrays
- Probing Parity Violation in the Stochastic Gravitational Wave Background with Astrometry
- Detectability of the cross-correlation between CMB lensing and stochastic GW background from compact object mergers
- Templated Anisotropic Analyses of the LISA Galactic Foreground
- The impact of large-scale galaxy clustering on the variance of the Hellings-Downs correlation: theoretical framework
- Separating deterministic and stochastic gravitational wave signals in realistic pulsar timing array datasets
- Posterior predictive checking for gravitational-wave detection with pulsar timing arrays: II. Posterior predictive distributions and pseudo Bayes factors
- Astrometry meets Pulsar Timing Arrays: Synergies for Gravitational Wave Detection
- Measuring anisotropies in the PTA band with cross-correlations
- Gravitational Waves, Extreme Astrophysics, and Fundamental Physics with Precision Pulsar Timing
- Mitigating cosmic variance in the Hellings-Downs curve: a Cosmic Microwave Background analogy
- Dissecting the nanoHz gravitational wave sky: frequency-correlated anisotropy induced by eccentric supermassive black hole binaries
- The impact of large-scale galaxy clustering on the variance of the Hellings-Downs correlation: numerical results
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- Estimating the gravitational wave background anisotropy: a Bayesian approach boosted by cross-correlation angular power spectrum
- Full analytic expressions of overlap reduction functions for anisotropies of the stochastic gravitational-wave background with pulsar timing arrays
- Comparison of maximum likelihood mapping methods for gravitational-wave backgrounds
- Observation of polarized stochastic gravitational-wave background in pulsar-timing-array experiments