Measuring anisotropies in the PTA band with cross-correlations
arXiv:2502.17401 · doi:10.1093/mnras/staf1074
Abstract
The astrophysical gravitational wave background in the nanohertz (nHz) band is expected to be primarily composed of the superposition of signals from binaries of supermassive black holes. The spatial discreteness of these sources introduces shot noise, which, in certain regimes, would overwhelm efforts to measure the anisotropy of the gravitational wave background. Moreover, the fact the time-residual map has a finite angular resolution and the presence of pulsar noise, affects our ability to construct the angular power spectrum of the anisotropy from a time-residual map (finite resolution noise). In this work, we explicitly demonstrate, starting from first principles, that cross-correlating a gravitational wave background map with a sufficiently dense galaxy survey can mitigate this issue. This approach could potentially reveal underlying properties of the gravitational wave background that would otherwise remain obscured. We quantify both the shot noise and the finite resolution noise level and show that cross-correlating the gravitational wave background with a galaxy catalog improves by more than one order of magnitude the prospects for a first detection of the background anisotropy by a gravitational wave observatory operating in the nHz frequency range. In particular, we find that with a futuristic scenario with an effective number of frequencies equal to , the detection of the spectral amplitude can be achieved combining the first multipoles, with a threshold to resolve single events SKA-like. Increasing observation time, pulsar number or reducing the pulsar white noise considerably improves the detection significance.
12 pages, 3 figures
References in corpus (28)
- 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 stochastic gravitational-wave background from massive black hole binary systems: implications for observations with Pulsar Timing Arrays
- The NANOGrav 15-year Data Set: Observations and Timing of 68 Millisecond Pulsars
- The second data release from the European Pulsar Timing Array I. The dataset and timing analysis
- Expected properties of the first gravitational wave signal detected with pulsar timing arrays
- A calibration of the relation between the abundance of close galaxy pairs and the rate of galaxy mergers
- Mapping gravitational-wave backgrounds using methods from CMB analysis: Application to pulsar timing arrays
- The MeerKAT Pulsar Timing Array: First Data Release
- 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
- Stochastic gravitational wave background phenomenology in a pulsar timing array
- Answers to frequently asked questions about the pulsar timing array Hellings and Downs curve
- Harmonic space analysis of pulsar timing array redshift maps
- Doppler boosting the stochastic gravitational wave background
- Spectral Variance in a Stochastic Gravitational-Wave Background From a Binary Population
- Source anisotropies and pulsar timing arrays
- The MeerKAT Pulsar Timing Array: Maps of the gravitational-wave sky with the 4.5 year data release
- Pulsar Timing Array Harmonic Analysis and Source Angular Correlations
- Charting the Nanohertz Gravitational Wave Sky with Pulsar Timing Arrays
- Correlations for an anisotropic polarized stochastic gravitational wave background in pulsar timing arrays
- Measurement of the Cross-Correlation Angular Power Spectrum Between the Stochastic Gravitational Wave Background and Galaxy Over-Density
- Harmonic analysis for pulsar timing arrays
- Measuring kinematic anisotropies with pulsar timing arrays
- The impact of large-scale galaxy clustering on the variance of the Hellings-Downs correlation: theoretical framework
- 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