Significant challenges for astrophysical inference with next-generation gravitational-wave observatories
arXiv:2503.04073 · doi:10.1103/n6t6-5wn3
Abstract
The next generation of gravitational-wave observatories will achieve unprecedented strain sensitivities with an expanded observing band. They will detect binary neutron star (BNS) mergers every year, the loudest of which will be in the band for minutes with signal-to-noise ratios . Current techniques will not be able to determine the astrophysical parameters of the loudest of next-gen BNS signals. We show that subtleties arising from the rotation of the Earth and the free-spectral range of gravitational-wave interferometers dramatically increases the complexity of next-gen BNS signals compared to the one-minute signals seen by LIGO--Virgo. Various compression methods currently relied upon to speed up the most expensive BNS calculations -- reduced-order quadrature, multi-banding, and relative binning -- will no longer be effective. We carry out reduced-order inference on a simulated next-gen BNS signal taking into account the Earth's rotation and the observatories' free-spectral range. We show that standard data compression techniques become impractical, and the full problem becomes computationally infeasible, when we include data below Hz -- a part of the observing band that is critical for precise sky localisation. We discuss potential paths towards solving this complex problem.
References in corpus (40)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- GWTC-1: A Gravitational-Wave Transient Catalog of Compact Binary Mergers Observed by LIGO and Virgo during the First and Second Observing Runs
- GWTC-2: Compact Binary Coalescences Observed by LIGO and Virgo During the First Half of the Third Observing Run
- dynesty: A Dynamic Nested Sampling Package for Estimating Bayesian Posteriors and Evidences
- GWTC-3: Compact Binary Coalescences Observed by LIGO and Virgo During the Second Part of the Third Observing Run
- GW190425: Observation of a Compact Binary Coalescence with Total Mass
- Bilby: A user-friendly Bayesian inference library for gravitational-wave astronomy
- Intermediate-Mass Black Holes
- Bayesian inference for compact binary coalescences with BILBY: Validation and application to the first LIGO--Virgo gravitational-wave transient catalogue
- Matching post-Newtonian and numerical relativity waveforms: systematic errors and a new phenomenological model for non-precessing black hole binaries
- An introduction to Bayesian inference in gravitational-wave astronomy: parameter estimation, model selection, and hierarchical models
- Model Waveform Accuracy Standards for Gravitational Wave Data Analysis
- A guide to LIGO-Virgo detector noise and extraction of transient gravitational-wave signals
- Real-time gravitational-wave science with neural posterior estimation
- Improving the NRTidal model for binary neutron star systems
- GW170817: Implications for the Stochastic Gravitational-Wave Background from Compact Binary Coalescences
- Fast prediction and evaluation of gravitational waveforms using surrogate models
- Fast and Accurate Inference on Gravitational Waves from Precessing Compact Binaries
- Forecasting the detection capabilities of third-generation gravitational-wave detectors using
- Gravitational-wave physics with Cosmic Explorer: limits to low-frequency sensitivity
- Frequency-Dependent Responses in 3rd Generation Gravitational-Wave Detectors
- Bilby-MCMC: An MCMC sampler for gravitational-wave inference
- Gravitational wave parameter estimation with compressed likelihood evaluations
- Accelerating parameter estimation of gravitational waves from compact binary coalescence using adaptive frequency resolutions
- A Program for Multi-Messenger Standard Siren Cosmology in the Era of LIGO A+, Rubin Observatory, and Beyond
- High-frequency corrections to the detector response and their effect on searches for gravitational waves
- Measuring the primordial gravitational-wave background in the presence of astrophysical foregrounds
- Modeling compact binary signals and instrumental glitches in gravitational wave data
- Waveform accuracy and systematic uncertainties in current gravitational wave observations
- Mode-by-mode Relative Binning: Fast Likelihood Estimation for Gravitational Waveforms with Spin-Orbit Precession and Multiple Harmonics
- Bayesian inference for gravitational waves from binary neutron star mergers in third-generation observatories
- Real-time gravitational-wave inference for binary neutron stars using machine learning
- Quantifying the Effect of Power Spectral Density Uncertainty on Gravitational-Wave Parameter Estimation for Compact Binary Sources
- When models fail: an introduction to posterior predictive checks and model misspecification in gravitational-wave astronomy
- Source Confusion from Neutron Star Binaries in Ground-Based Gravitational Wave Detectors is Minimal
- Calibration Uncertainty's Impact on Gravitational-Wave Observations
- Concurrent estimation of noise and compact-binary signal parameters in gravitational-wave data
- Localization of binary neutron star mergers with a single Cosmic Explorer
- Decoding Long-duration Gravitational Waves from Binary Neutron Stars with Machine Learning: Parameter Estimation and Equations of State
- Multi-messenger astronomy with a Southern-Hemisphere gravitational-wave observatory