Hellings and Downs correlation of an arbitrary set of pulsars
arXiv:2208.07230 · doi:10.1103/PhysRevD.108.043026
Abstract
Pulsar timing arrays (PTAs) detect gravitational waves (GWs) via the correlations they induce in the arrival times of pulses from different pulsars. We assume that the GWs are described by a Gaussian ensemble. The mean correlation as a function of the angle between the directions to two pulsars was predicted by Hellings and Downs (HD) in 1983. The variance in this correlation was recently calculated by Allen[11] for a single noise-free pulsar pair at angle , which shows that after averaging over many pairs, the variance reduces to an intrinsic cosmic variance . Here, we extend this to an set of pulsars at specific sky locations, with pulsar pairs binned by . We derive the linear combination of pulsar-pair correlations which is the optimal estimator of the HD correlation for each bin, illustrating our methods with plots of the expected range of variation away from the HD curve, for the sets of pulsars monitored by three active PTA collaborations. We compute the variance of and the covariance between these binned estimates, and show that these reduce to the cosmic variance and covariance respectively, in the many-pulsar limit. The likely fluctuations away from the HD curve are strongly correlated/anticorrelated in the three angular regions where is successively positive, negative, and positive. We also construct the optimal estimator of the squared strain . When there are very many pulsar pairs, this determines with arbitrary precision because PTAs probe an infinite set of GW modes. To assess observed deviations away from the HD curve, we characterize several goodness-of-fit statistics. We also show how pulsar noise and measurement noise can be included.
Final published version. Note that the arXiv version of the Abstract has been shortened to fit arXiv requirements
References in corpus (14)
- The NANOGrav 15-year Data Set: Evidence for a Gravitational-Wave Background
- Search for an isotropic gravitational-wave background with the Parkes Pulsar Timing Array
- Searching for the nano-Hertz stochastic gravitational wave background with the Chinese Pulsar Timing Array Data Release I
- The second data release from the European Pulsar Timing Array III. Search for gravitational wave signals
- The International Pulsar Timing Array second data release: Search for an isotropic Gravitational Wave Background
- On the evidence for a common-spectrum process in the search for the nanohertz gravitational-wave background with the Parkes Pulsar Timing Array
- Common-red-signal analysis with 24-yr high-precision timing of the European Pulsar Timing Array: Inferences in the stochastic gravitational-wave background search
- Mapping gravitational-wave backgrounds using methods from CMB analysis: Application to pulsar timing arrays
- 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
- High-frequency corrections to the detector response and their effect on searches for gravitational waves
- Pulsar and cosmic variances of pulsar timing-array correlation measurements of the stochastic gravitational wave background
- Common-spectrum process versus cross-correlation for gravitational-wave searches using pulsar timing arrays
- Harmonic space analysis of pulsar timing array redshift maps
Cited by in corpus (39)
- The second data release from the European Pulsar Timing Array III. Search for gravitational wave signals
- The MeerKAT Pulsar Timing Array: The first search for gravitational waves with the MeerKAT radio telescope
- Pulsar and cosmic variances of pulsar timing-array correlation measurements of the stochastic gravitational wave background
- The NANOGrav 15-year Gravitational-Wave Background Methods
- Answers to frequently asked questions about the pulsar timing array Hellings and Downs curve
- Hunting the stochastic gravitational wave background in pulsar timing array cross correlations through theoretical uncertainty
- Search for Non-Tensorial Gravitational-Wave Backgrounds in the NANOGrav 15-Year Data Set
- Dissecting the Stochastic Gravitational Wave Background with Astrometry
- Testing gravity with cosmic variance-limited pulsar timing array correlations
- Source anisotropies and pulsar timing arrays
- Status Report on Global Pulsar-Timing-Array Efforts to Detect Gravitational Waves
- 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
- Beyond the Hellings-Downs curve: Non-Einsteinian gravitational waves in pulsar timing array correlations
- Pulsar Timing Array Harmonic Analysis and Source Angular Correlations
- Pulsar Timing Arrays require hierarchical models
- Pulsar timing array source ensembles
- Generalized optimal statistic for characterizing multiple correlated signals in pulsar timing arrays
- Spatial and Spectral Characterization of the Gravitational-wave Background with the PTA Optimal Statistic
- Correlations for an anisotropic polarized stochastic gravitational wave background in pulsar timing arrays
- Harmonic analysis for pulsar timing arrays
- Optimal reconstruction of the Hellings and Downs correlation
- Posterior predictive checking for gravitational-wave detection with pulsar timing arrays: I. The optimal statistic
- Unveiling the Graviton Mass Bounds through Analysis of 2023 Pulsar Timing Array Data Releases
- Testing strengths, limitations and biases of current Pulsar Timing Arrays detection analyses on realistic data
- Use Model Averaging instead of Model Selection in Pulsar Timing
- The impact of large-scale galaxy clustering on the variance of the Hellings-Downs correlation: theoretical framework
- Cosmic variance of the Hellings and Downs correlation for ensembles of universes having nonzero angular power spectra
- Toward a test of Gaussianity of a gravitational wave background
- Posterior predictive checking for gravitational-wave detection with pulsar timing arrays: II. Posterior predictive distributions and pseudo Bayes factors
- Mitigating cosmic variance in the Hellings-Downs curve: a Cosmic Microwave Background analogy
- The impact of large-scale galaxy clustering on the variance of the Hellings-Downs correlation: numerical results
- The NANOGrav 15 yr data set: Posterior predictive checks for gravitational-wave detection with pulsar timing arrays
- Pulsar timing and polarimetry: results and perspectives
- Rapid Construction of Joint Pulsar Timing Array Datasets: The Lite Method
- Finite Populations & Finite Time: The Non-Gaussianity of a Gravitational Wave Background
- An updated constraint for the Gravitational Wave Background from the Gamma-ray Pulsar Timing Array
- Identifying the Quadrupolar Nature of Gravitational Wave Background through Space-based Missions
- On the calculation of p-values for quadratic statistics in Pulsar Timing Arrays