Systematic errors due to quasi-universal relations in binary neutron stars and their correction for unbiased model selection
arXiv:2209.02757 · doi:10.1103/PhysRevD.106.123001
Abstract
Inference of the equation-of-state (EoS) of dense nuclear matter in neutron-star cores is a principal science goal of X-ray and gravitational-wave observations of neutron stars. In particular, gravitational-wave observations provide an independent probe of the properties of bulk matter in neutron star cores that can then be used to compare with theoretically derived equations of state. In this paper, we quantify the systematic errors arising from the application of EoS-independent \emph{quasi-universal relations} in the estimation of neutron star tidal deformabilities and radii from gravitational-wave measurements and introduce a strategy to correct for the systematic biases in the inferred radii. We apply this method to a simulated population of events expected to be observed by future upgrades of current detectors and the next-generation of ground-based observatories. We show that our approach can accurately correct for the systematic biases arising from approximate universal relations in the mass-radius curves of neutron stars. Using the posterior distributions of the mass and radius for the simulated population we infer the underlying EoS with a good degree of precision. Our method revives the possibility of using the universal relations for rapid Bayesian model selection of dense matter EoS in gravitational-wave observations.
accepted PRD
References in corpus (24)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- GWTC-2: Compact Binary Coalescences Observed by LIGO and Virgo During the First Half of the Third Observing Run
- Tidal Love numbers of neutron stars
- Constraining neutron star tidal Love numbers with gravitational wave detectors
- Constraints on a phenomenologically parameterized neutron-star equation of state
- Sensitivity and Performance of the Advanced LIGO Detectors in the Third Observing Run
- Post-1-Newtonian tidal effects in the gravitational waveform from binary inspirals
- New Hyperon Equations of State for Supernovae and Neutron Stars in Density-dependent Hadron Field Theory
- Reconstructing the neutron-star equation of state with gravitational-wave detectors from a realistic population of inspiralling binary neutron stars
- Spectral Representations of Neutron-Star Equations of State
- The Impact of Star Formation and Gamma-Ray Burst Rates at High Redshift on Cosmic Chemical Evolution and Reionization
- Inferring neutron star properties from GW170817 with universal relations
- Gwbench: a novel Fisher information package for gravitational-wave benchmarking
- A Parametrized Equation of State for Neutron Star Matter with Continuous Sound Speed
- Ranking Love numbers for the neutron star equation of state: The need for third-generation detectors
- Bayesian model-selection of neutron star equation of state using multi-messenger observations
- Bayesian inference for gravitational waves from binary neutron star mergers in third-generation observatories
- Updated universal relations for tidal deformabilities of neutron stars from phenomenological equations of state
- Equation-of-state-insensitive measure of neutron star stiffness
- Gravitational waves from pulsations of neutron stars described by realistic Equations of State
- Rapid model comparison of equations of state from gravitational wave observation of binary neutron star coalescences
- Improved Spectral Representations of Neutron-Star Equations of State
- The failure of the Fisher Matrix when including tidal terms: Considering construction of template banks of tidally deformed binary neutron stars
Cited by in corpus (9)
- The Science of the Einstein Telescope
- Possible Causes of False General Relativity Violations in Gravitational Wave Observations
- Cosmography with next-generation gravitational wave detectors
- Impact of updated Multipole Love numbers and f-Love Universal Relations in the context of Binary Neutron Stars
- Rapidly rotating neutron stars: Universal relations and EOS inference
- Quasi-universal relations in the context of future neutron star detections
- Insights into Binary Neutron Star Merger Simulations: A Multi-Code Comparison
- Listening Across the Cosmic Time: Standard Sirens from Ground- and Space-Based Missions in the Next Decade
- Combining simulation-based inference and universal relations for precise and accurate neutron star science