Solving the relativistic inverse stellar problem through gravitational waves observation of binary neutron stars
arXiv:1712.01303 · doi:10.1103/PhysRevD.97.084014
Abstract
The LIGO/Virgo collaboration has recently announced the direct detection of gravitational waves emitted in the coalescence of a neutron star binary. This discovery allows, for the first time, to set new constraints on the behavior of matter at supranuclear density, complementary with those coming from astrophysical observations in the electromagnetic band. In this paper we demonstrate the feasibility of using gravitational signals to solve the relativistic inverse stellar problem, i.e. to reconstruct the parameters of the equation of state (EoS) from measurements of the stellar mass and tidal Love number. We perform Bayesian inference of mock data, based on different models of the star internal composition, modeled through piecewise polytropes. Our analysis shows that the detection of a small number of sources by a network of advanced interferometers would allow to put accurate bounds on the EoS parameters, and to perform a model selection among the realistic equations of state proposed in the literature.
minor changes to match the version published on PRD
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Cited by in corpus (14)
- Neutron star tidal deformability and equation of state constraints
- Gravitational waves from neutron star mergers and their relation to the nuclear equation of state
- Non-parametric inference of the neutron star equation of state from gravitational wave observations
- Interpreting Binary Neutron Star Mergers: Describing the Binary Neutron Star Dynamics, Modelling Gravitational Waveforms, and Analyzing Detections
- Causal Representations of Neutron-Star Equations of State
- Comparing two models for measuring the neutron star equation of state from gravitational-wave signals
- Constraining the neutron star equation of state using multi-band independent measurements of radii and tidal deformabilities
- Uncertainty limits on neutron star radius measurements with gravitational waves
- Reconstruction of the neutron star equation of state from -quasinormal modes spectra with a piecewise polytropic meshing and refinement method
- Quansinormal modes of static and spherically symmetric black holes with the derivative coupling
- Piecewise polytropic meshing and refinement method for the reconstruction of the neutron star equation of state using tidal deformabilities and constraints in the piecewise polytropic parameters given by the GW170817 event
- Tidal deformations of compact objects and gravitational wave emission
- Constraints on the Neutron Star Equation of State from GW170817
- Constraining the Nuclear Equation of State from Rotating Neutron Stars