Quantifying Systematic Biases in Black Hole Spectroscopy
arXiv:2507.22122 · doi:10.1103/g6sz-dw28
Abstract
How long after the merger of two black holes can one rely on linear perturbation theory, and how many quasinormal modes are in the ringdown? Such questions suggest that black hole spectroscopy suffers from systematic uncertainties that potentially spoil ringdown analyses, both from high-accuracy simulations and in data from gravitational wave detectors. In this work, we demonstrate that linear-signal analysis is a powerful tool for quantifying biases, allowing for detailed explorations that are computationally too expensive for traditional Bayesian injection and recovery approaches. We quantify the validity of the Fisher information matrix and bias formula by comparing it to robust but slow Bayesian sampling. Working with flat noise in the time domain, statistical errors and systematic biases can mostly be detected analytically. Due to its efficiency, we provide detailed parameter space analyses for potentially unmodeled small contributions from overtones, quadratic modes, and tails. We find linear signal analysis well suited for predicting biases in simple ringdown models at intermediate signal-to-noise ratios (SNRs) of order 50 when unmodeled effects are small. It is also valuable in explaining ongoing issues in extracting quasinormal modes from high-precision simulations, as one can understand them as high-SNR signals. Therefore, this approach offers promising prospects for improving ringdown models by efficiently identifying and incorporating systematic uncertainties, ultimately enhancing the accuracy and robustness of black hole spectroscopy.
16 pages, 10 figures, 1 table
References in corpus (51)
- emcee: The MCMC Hammer
- Quasinormal modes of black holes and black branes
- Quasinormal modes of black holes: from astrophysics to string theory
- Science Case for the Einstein Telescope
- On gravitational-wave spectroscopy of massive black holes with the space interferometer LISA
- Inspiral, merger and ring-down of equal-mass black-hole binaries
- Inspiral, merger and ringdown of unequal mass black hole binaries: a multipolar analysis
- Testing the no-hair theorem with GW150914
- Black hole ringdown: the importance of overtones
- Matched-filtering and parameter estimation of ringdown waveforms
- Modeling Ringdown: Beyond the Fundamental Quasi-Normal Modes
- LISA detections of massive black hole inspirals: parameter extraction errors due to inaccurate template waveforms
- Observational Black Hole Spectroscopy: A time-domain multimode analysis of GW150914
- Nonlinearities in Black Hole Ringdowns
- Nonlinear effects in black hole ringdown
- Analysis of Ringdown Overtones in GW150914
- Quasinormal ringing of Kerr black holes: The excitation factors
- Agnostic black hole spectroscopy: Quasinormal mode content of numerical relativity waveforms and limits of validity of linear perturbation theory
- Ringdown overtones, black hole spectroscopy, and no-hair theorem tests
- Quasinormal ringing of Kerr black holes. II. Excitation by particles falling radially with arbitrary energy
- Nonlinear effects in the black hole ringdown: absorption-induced mode excitation
- Extracting linear and nonlinear quasinormal modes from black hole merger simulations
- Quasinormal-mode filters: a new approach to analyze the gravitational-wave ringdown of binary black-hole mergers
- Importance of mirror modes in binary black hole ringdown waveform
- Role of black hole quasinormal mode overtones for ringdown analysis
- Spin dependence of black hole ringdown nonlinearities
- Aspects of multimode Kerr ring-down fitting
- Possible Causes of False General Relativity Violations in Gravitational Wave Observations
- Black hole spectroscopy by mode cleaning
- High-overtone fits to numerical relativity ringdowns: beyond the dismissed n=8 special tone
- Precession during merger 1: Strong polarization changes are observationally accessible features of strong-field gravity during binary black hole merger
- Reply to Comment on "Analysis of Ringdown Overtones in GW150914"
- Comment on "Analysis of Ringdown Overtones in GW150914''
- Neural Posterior Estimation with guaranteed exact coverage: the ringdown of GW150914
- Nonlinear quasinormal mode detectability with next-generation gravitational wave detectors
- Resonant Excitation of Quasinormal Modes of Black Holes
- Overtones and Nonlinearities in Binary Black Hole Ringdowns
- Systematic Biases in Estimating the Properties of Black Holes Due to Inaccurate Gravitational-Wave Models
- Inspiral-inherited ringdown tails
- Systematic bias from waveform modeling for binary black hole populations in next-generation gravitational wave detectors
- Systematic biases due to waveform mismodeling in parametrized post-Einsteinian tests of general relativity: The impact of neglecting spin precession and higher modes
- Hushing black holes: tails in dynamical spacetimes
- Quasinormal modes and excitation factors of Kerr black holes
- Phenomenology and origin of late-time tails in eccentric binary black hole mergers
- High-Precision Ringdown Surrogate Model for Non-Precessing Binary Black Holes
- Ringdown mode amplitudes of precessing binary black holes
- Simulation-based inference of black hole ringdowns in the time domain
- On the universality of late-time ringdown tail
- Ringdown spectroscopy of phenomenologically modified black holes
- Robustness of extracting quasinormal mode information from black hole merger simulations
- Einstein-Klein-Gordon system via Cauchy-characteristic evolution: Computation of memory and ringdown tail
Cited by in corpus (7)
- Black hole spectroscopy of collapsing and merging neutron stars
- Echoes and quasinormal modes of asymmetric black bounces
- Quasinormal modes and their excitation beyond general relativity. II: isospectrality loss in gravitational waveforms
- Confronting eikonal and post-Kerr methods with numerical evolution of scalar field perturbations in spacetimes beyond Kerr
- Quasinormal modes from numerical relativity with Bayesian inference
- Black-hole ringdown with templates capturing spin precession: A reanalysis of GW190521
- Waveform stability of black hole ringdown with stochastic horizon structure