Fortifying gravitational-wave tests of general relativity against astrophysical assumptions
arXiv:2309.04528 · doi:10.1103/PhysRevD.108.124060
Abstract
Most tests of general relativity with gravitational-wave observations rely on inferring the degree to which a signal deviates from general relativity in conjunction with the astrophysical parameters of its source, such as the component masses and spins of a compact binary. Due to features of the signal, measurements of these deviations are often highly correlated with the properties of astrophysical sources. As a consequence, prior assumptions about astrophysical parameters will generally affect the inferred magnitude of the deviations. Incorporating information about the underlying astrophysical population is necessary to avoid biases in the inference of deviations from general relativity. Current tests assume that the astrophysical population follows an unrealistic fiducial prior chosen to ease sampling of the posterior -- for example, a prior flat in component masses -- which is is inconsistent with both astrophysical expectations and the distribution inferred from observations. We propose a framework for fortifying tests of general relativity by simultaneously inferring the astrophysical population using a catalog of detections. Although this method applies broadly, we demonstrate it concretely on massive graviton constraints and parameterized tests of deviations to the post-Newtonian phase coefficients. Using observations from LIGO-Virgo-KAGRA's third observing run, we show that concurrent inference of the astrophysical distribution strengthens constraints and improves overall consistency with general relativity. We provide updated constraints on deviations from the theory, finding that, upon modeling the astrophysical population, the 90\%-credible upper limit on the mass of the graviton improves by to and the inferred population-level post-Newtonian deviations move closer to zero.
20 pages, 11 figures
References in corpus (23)
- The Astropy Project: Sustaining and Growing a Community-oriented Open-source Project and the Latest Major Release (v5.0) of the Core Package
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- The Confrontation between General Relativity and Experiment
- Advanced LIGO
- GW170814: A Three-Detector Observation of Gravitational Waves from a Binary Black Hole Coalescence
- GW190814: Gravitational Waves from the Coalescence of a 23 M Black Hole with a 2.6 M Compact Object
- Observation of gravitational waves from two neutron star-black hole coalescences
- An improved effective-one-body model of spinning, nonprecessing binary black holes for the era of gravitational-wave astrophysics with advanced detectors
- Distinguishing Spin-Aligned and Isotropic Black Hole Populations With Gravitational Waves
- Testing the no-hair theorem with black hole ringdowns using TIGER
- Accuracy Requirements for Empirically-Measured Selection Functions
- Cover Your Basis: Comprehensive Data-Driven Characterization of the Binary Black Hole Population
- Tests of General Relativity with Gravitational-Wave Observations using a Flexible--Theory-Independent Method
- Systematic bias on parameterized tests of general relativity due to neglect of orbital eccentricity
- On combining information from multiple gravitational wave sources
- Accumulating errors in tests of general relativity with gravitational waves: overlapping signals and inaccurate waveforms
- Systematic bias on the inspiral-merger-ringdown consistency test due to neglect of orbital eccentricity
- Limits on hierarchical black hole mergers from the most negative systems
- When models fail: an introduction to posterior predictive checks and model misspecification in gravitational-wave astronomy
- Gravitational wave inference on a numerical-relativity simulation of a black hole merger beyond general relativity
- Model exploration in gravitational-wave astronomy with the maximum population likelihood
- Constraining gravitational wave amplitude birefringence with GWTC-3
- Accelerating Tests of General Relativity with Gravitational-Wave Signals using Hybrid Sampling
Cited by in corpus (17)
- Observation of Gravitational Waves from the Coalescence of a Compact Object and a Neutron Star
- Possible Causes of False General Relativity Violations in Gravitational Wave Observations
- Inspiral-merger-ringdown waveforms in Einstein-scalar-Gauss-Bonnet gravity within the effective-one-body formalism
- Gravitational wave populations and cosmology with neural posterior estimation
- Eccentricity-induced systematic error on parametrized tests of general relativity: Hierarchical Bayesian inference applied to a binary black hole population
- Physical Models for the Astrophysical Population of Black Holes: Application to the Bump in the Mass Distribution of Gravitational Wave Sources
- Parametrized spin-precessing inspiral-merger-ringdown waveform model for tests of general relativity
- Multidimensional hierarchical tests of general relativity with gravitational waves
- Tests of General Relativity with GW230529: a neutron star merging with a lower mass-gap compact object
- The curvature dependence of gravitational-wave tests of General Relativity
- Catalog variance of testing general relativity with gravitational-wave data
- Detecting Unmodeled, Source-dependent Signals in Gravitational Waves with SCoRe
- Theoretical Radio Signals from Radio-Band Gravitational Waves Converted from the Neutron Star Magnetic Field
- Testing general relativity with gravitational waves -- improving and extending Modified Dispersion Relation tests
- Gravitational-wave signatures of nonviolent nonlocality
- Neural Post-Einsteinian Test of General Relativity with the Third Gravitational-Wave Transient Catalog
- Gravitational-wave astronomy requires population-informed parameter estimation