Gravitational-wave model for neutron star merger remnants with supervised learning
arXiv:2405.09513 · doi:10.1103/PhysRevD.111.023002
Abstract
We present a time-domain model for the gravitational waves emitted by equal-mass binary neutron star merger remnants for a fixed equation of state. We construct a large set of numerical relativity simulations for a single equation of state consistent with current constraints, totaling 157 equal-mass binary neutron star merger configurations. The gravitational-wave model is constructed using the supervised learning method of K-nearest neighbor regression. As a first step toward developing a general model with supervised learning methods that accounts for the dependencies on equation of state and the binary masses of the system, we explore the impact of the size of the dataset on the model. We assess the accuracy of the model for a varied dataset size and number density in total binary mass. Specifically, we consider five training sets of simulations uniformly distributed in total binary mass. We evaluate the resulting models in terms of faithfulness using a test set of 30 additional simulations that are not used during training and which are equidistantly spaced in total binary mass. The models achieve faithfulness with maximum values in the range of to . We assess our models simulating signals observed by the three-detector network of Advanced LIGO-Virgo. We find that all models with training sets of size equal to or larger than achieve an unbiased measurement of the main gravitational-wave frequency. We confirm that our results do not depend qualitatively on the choice of the (fixed) equation of state. We conclude that training sets, with a minimum size of simulations, or a number density of approximately simulations per of total binary mass, suffice for the construction of faithful templates for the post-merger signal for a single equation of state and equal-mass binaries (abbreviated).
21 pages, 13 figures, Published in Phys. Rev. D on Jan 2, 2025
References in corpus (88)
- SciPy 1.0--Fundamental Algorithms for Scientific Computing in Python
- Array Programming with NumPy
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Advanced LIGO
- The equation of state for nucleon matter and neutron star structure
- GW170817: Measurements of Neutron Star Radii and Equation of State
- dynesty: A Dynamic Nested Sampling Package for Estimating Bayesian Posteriors and Evidences
- GW190425: Observation of a Compact Binary Coalescence with Total Mass
- Properties of the binary neutron star merger GW170817
- Exploring the Sensitivity of Next Generation Gravitational Wave Detectors
- Science Case for the Einstein Telescope
- Bilby: A user-friendly Bayesian inference library for gravitational-wave astronomy
- Gravitational Wave Experiments and Early Universe Cosmology
- Constraining the Maximum Mass of Neutron Stars From Multi-Messenger Observations of GW170817
- Using gravitational-wave observations and quasi-universal relations to constrain the maximum mass of neutron stars
- Core-collapse supernova equations of state based on neutron star observations
- GW170817: Joint Constraint on the Neutron Star Equation of State from Multimessenger Observations
- Neutron-star radius constraints from GW170817 and future detections
- Bayesian inference for compact binary coalescences with BILBY: Validation and application to the first LIGO--Virgo gravitational-wave transient catalogue
- Modeling GW170817 based on numerical relativity and its implications
- GW170817, General Relativistic Magnetohydrodynamic Simulations, and the Neutron Star Maximum Mass
- Stringent constraints on neutron-star radii from multimessenger observations and nuclear theory
- Measuring neutron-star properties via gravitational waves from binary mergers
- Merger of binary neutron stars with realistic equations of state in full general relativity
- Nonparametric constraints on neutron star matter with existing and upcoming gravitational wave and pulsar observations
- Constraining Neutron-Star Matter with Microscopic and Macroscopic Collisions
- Remnant massive neutron stars of binary neutron star mergers: Evolution process and gravitational waveform
- Dynamic nested sampling: an improved algorithm for parameter estimation and evidence calculation
- Binary Neutron Star Mergers: Dependence on the Nuclear Equation of State
- Prompt merger collapse and the maximum mass of neutron stars
- Modeling the complete gravitational wave spectrum of neutron star mergers
- Spectral properties of the post-merger gravitational-wave signal from binary neutron stars
- Neutron star tidal deformability and equation of state constraints
- Search for post-merger gravitational waves from the remnant of the binary neutron star merger GW170817
- Relativistic neutron star merger simulations with non-zero temperature equations of state I. Variation of binary parameters and equation of state
- Equation-of-state dependence of the gravitational-wave signal from the ring-down phase of neutron-star mergers
- Testing Approximations of Thermal Effects in Neutron Star Merger Simulations
- Demonstrating the feasibility of probing the neutron star equation of state with second-generation gravitational wave detectors
- Gravitational waves from neutron star mergers and their relation to the nuclear equation of state
- Neutron Star Extreme Matter Observatory: A kilohertz-band gravitational-wave detector in the global network
- Reconstructing the neutron-star equation of state with gravitational-wave detectors from a realistic population of inspiralling binary neutron stars
- Gravitational waves and nonaxisymmetric oscillation modes in mergers of compact object binaries
- Impact of the PSR J0740+6620 radius constraint on the properties of high-density matter
- Low mass binary neutron star mergers : gravitational waves and neutrino emission
- Gravitational waves and mass ejecta from binary neutron star mergers: Effect of the mass-ratio
- Exploring properties of high-density matter through remnants of neutron-star mergers
- Observing Gravitational Waves From The Post-Merger Phase Of Binary Neutron Star Coalescence
- Neutron-star Radius from a Population of Binary Neutron Star Mergers
- Conformally Flat Smoothed Particle Hydrodynamics: Application to Neutron Star Mergers
- Gravitational waves from relativistic neutron star mergers with nonzero-temperature equations of state
- Inferring the post-merger gravitational wave emission from binary neutron star coalescences
- Constraining nuclear equations of state using gravitational waves from hypermassive neutron stars
- Neutron Star Merger Remnants
- Discriminating Strange Star Mergers from Neutron Star Mergers by Gravitational-Wave Measurements
- Exploring the sensitivity of gravitational wave detectors to neutron star physics
- Science-Driven Tunable Design of Cosmic Explorer Detectors
- Interpreting Binary Neutron Star Mergers: Describing the Binary Neutron Star Dynamics, Modelling Gravitational Waveforms, and Analyzing Detections
- kiloHertz gravitational waves from binary neutron star remnants: time-domain model and constraints on extreme matter
- The evolution of binary neutron star post-merger remnants: a review
- Tight multi-messenger constraints on the neutron star equation of state from GW170817 and a forward model for kilonova light curve synthesis
- Observing the post-merger signal of GW170817-like events with improved gravitational-wave detectors
- Studying strong phase transitions in neutron stars with gravitational waves
- Gravitational wave spectroscopy of binary neutron star merger remnants with mode stacking
- An early warning system for electromagnetic follow-up of gravitational-wave events
- Systematics of prompt black-hole formation in neutron star mergers
- Modeling the postmerger gravitational wave signal and extracting binary properties from future binary neutron star detections
- Inference of the sound speed and related properties of neutron stars
- Probing the Internal Composition of Neutron Stars with Gravitational Waves
- Host redshifts from gravitational-wave observations of binary neutron star mergers
- Measuring the neutron star equation of state with gravitational waves: the first forty binary neutron star mergers
- Quasi-universal behaviour of the threshold mass in unequal-mass, spinning binary neutron-star mergers
- Spectral classification of gravitational-wave emission and equation of state constraints in binary neutron star mergers
- Spectral analysis of gravitational waves from binary neutron star merger remnants
- Analytic models of the spectral properties of gravitational waves from neutron star merger remnants
- Computing Fast and Reliable Gravitational Waveforms of Binary Neutron Star Merger Remnants
- Effects of High Density Phase Transitions on Neutron Star Dynamics
- Detection and parameter estimation of binary neutron star merger remnants
- Tuning Advanced LIGO to kilohertz signals from neutron-star collisions
- Bayesian inference of multimessenger astrophysical data: Joint and coherent inference of gravitational waves and kilonovae
- Unraveling information about supranuclear-dense matter from the complete binary neutron star coalescence process using future gravitational-wave detector networks
- Using machine learning to parametrize postmerger signals from binary neutron stars
- High-accuracy simulations of highly spinning binary neutron star systems
- Needle in a Bayes Stack: a Hierarchical Bayesian Method for Constraining the Neutron Star Equation of State with an Ensemble of Binary Neutron Star Post-merger Remnants
- Multimessenger astronomy with a kHz-band gravitational-wave observatory
- Prospects for the inference of inertial modes from hypermassive neutron stars with future gravitational-wave detectors
- Search for Postmerger Gravitational Waves from Binary Neutron Star Mergers Using a Matched-filtering Statistic
- Exploring the Potential for Detecting Rotational Instabilities in Binary Neutron Star Merger Remnants with Gravitational Wave Detectors
Cited by in corpus (3)
- R-process heating implementation in hydrodynamic simulations with neural networks
- Robust and fast parameter estimation for gravitational waves from binary neutron star merger remnants
- Topological Shell Structures in Neutron Stars: Effects on Equilibrium, Oscillations, and Gravitational-Wave Signatures