Mapping Parameter Correlations in Spinning Binary Black Hole Mergers
arXiv:2502.17402 · doi:10.1103/4vbp-1jwl
Abstract
The spins of binary black holes measured with gravitational waves provide insights about the formation, evolution, and dynamics of these systems. However, interpreting these measurements-especially for heavy black holes-remains an open problem. While the imprint of spin during the inspiral phase, where the black holes are well-separated, is understood through analytic descriptions of the dynamics, no such expressions exist for the merger. Though numerical relativity simulations provide an exact solution (to within numerical error), the imprint of the full six spin degrees of freedom on the signal is not transparent. In the absence of analytic expressions for the merger and to advance our ability to interpret massive binary black hole spin measurements, here we propose a waveform-based approach. Leveraging a neural network to efficiently calculate mismatches between waveforms, we identify regions in the parameter space of spins and mass ratio that result in low mismatches and thus similar waveforms. We map these regions with a Gaussian fit, thus identifying correlations and quantifying their strength. For low-mass, inspiral-dominated systems, we recover the known physical imprint: larger aligned spins are correlated with more equal masses as they have opposite effects on the inspiral length. For high-mass, merger-dominated signals, a qualitatively similar correlation is present, though its shape is altered and strength decreases with larger total mass. Correlations between in-plane spins and mass ratio follow a similar trend, with their shape and strength altered as the mass increases. Our new methodology of waveform-based correlation mapping provides a first step toward systematically modeling spin effects in merger-dominated signals across the full intrinsic parameter-space and motivates future effective spin parameters beyond the reach of analytic methods.
21 pages including appendices and bibliography; 19 figures. Version accepted to PRD
References in corpus (66)
- Array Programming with NumPy
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- GWTC-1: A Gravitational-Wave Transient Catalog of Compact Binary Mergers Observed by LIGO and Virgo during the First and Second Observing Runs
- Advanced LIGO
- GW151226: Observation of Gravitational Waves from a 22-Solar-Mass Binary Black Hole Coalescence
- GWTC-2: Compact Binary Coalescences Observed by LIGO and Virgo During the First Half of the Third Observing Run
- GWTC-3: Compact Binary Coalescences Observed by LIGO and Virgo During the Second Part of the Third Observing Run
- GW190521: A Binary Black Hole Merger with a Total Mass of
- Bilby: A user-friendly Bayesian inference library for gravitational-wave astronomy
- Robust parameter estimation for compact binaries with ground-based gravitational-wave observations using the LALInference software library
- A simple model of complete precessing black-hole-binary gravitational waveforms
- GW190412: Observation of a Binary-Black-Hole Coalescence with Asymmetric Masses
- Comparison of post-Newtonian templates for compact binary inspiral signals in gravitational-wave detectors
- Properties and astrophysical implications of the 150 Msun binary black hole merger GW190521
- Inspiral-merger-ringdown waveforms for black-hole binaries with non-precessing spins
- Computationally efficient models for the dominant and sub-dominant harmonic modes of precessing binary black holes
- The SXS Collaboration catalog of binary black hole simulations
- Surrogate models for precessing binary black hole simulations with unequal masses
- Towards models of gravitational waveforms from generic binaries II: Modelling precession effects with a single effective precession parameter
- A guide to LIGO-Virgo detector noise and extraction of transient gravitational-wave signals
- Spinning-black-hole binaries: The orbital hang up
- Higher-order spin effects in the amplitude and phase of gravitational waveforms emitted by inspiraling compact binaries: Ready-to-use gravitational waveforms
- Analysis of spin precession in binary black hole systems including quadrupole-monopole interaction
- GW190521: orbital eccentricity and signatures of dynamical formation in a binary black hole merger signal
- Setting the cornerstone for the IMRPhenomX family of models for gravitational waves from compact binaries: The dominant harmonic for non-precessing quasi-circular black holes
- Towards models of gravitational waveforms from generic binaries: A simple approximate mapping between precessing and non-precessing inspiral signals
- Hierarchical data-driven approach to fitting numerical relativity data for nonprecessing binary black holes with an application to final spin and radiated energy
- Degeneracy between mass and spin in black-hole-binary waveforms
- Tracking the precession of compact binaries from their gravitational-wave signal
- SEOBNRv5PHM: Next generation of accurate and efficient multipolar precessing-spin effective-one-body waveforms for binary black holes
- Measuring the spin of black holes in binary systems using gravitational waves
- GW190521 as a dynamical capture of two nonspinning black holes
- Multi-timescale analysis of phase transitions in precessing black-hole binaries
- When can gravitational-wave observations distinguish between black holes and neutron stars?
- Gravitational-Wave Astronomy with Inspiral Signals of Spinning Compact-Object Binaries
- GW190521 may be an intermediate mass ratio inspiral
- Parameter estimation of spinning binary inspirals using Markov-chain Monte Carlo
- Gravitational-wave astrophysics with effective-spin measurements: asymmetries and selection biases
- General-relativistic precession in a black-hole binary
- Can we measure individual black-hole spins from gravitational-wave observations?
- Extracting linear and nonlinear quasinormal modes from black hole merger simulations
- The final twist: A model of gravitational waves from precessing black-hole binaries through merger and ringdown
- Detectability of gravitational waves from binary black holes: Impact of precession and higher modes
- Eccentricity or spin precession? Distinguishing subdominant effects in gravitational-wave data
- A generalized precession parameter to interpret gravitational-wave data
- Two-harmonic approximation for gravitational waveforms from precessing binaries
- A Bayesian approach to the follow-up of candidate gravitational wave signals
- Impact of subdominant modes on the interpretation of gravitational-wave signals from heavy binary black hole systems
- Precession during merger 1: Strong polarization changes are observationally accessible features of strong-field gravity during binary black hole merger
- The hangup effect in unequal mass binary black hole mergers and further studies of their gravitational radiation and remnant properties
- Removing degeneracy and multimodality in gravitational wave source parameters
- Spin it as you like: the (lack of a) measurement of the spin tilt distribution with LIGO-Virgo-KAGRA binary black holes
- Measuring the spins of heavy binary black holes
- Measuring binary black hole orbital-plane spin orientations
- New effective precession spin for modeling multimodal gravitational waveforms in the strong-field regime
- Revisiting the evidence for precession in GW200129 with machine learning noise mitigation
- Ringdown frequencies in black holes formed from precessing black-hole binaries
- Assessing the Energetics of Spinning Binary Black Hole Systems
- Parameterised population models of transient non-Gaussian noise in the LIGO gravitational-wave detectors
- GW190521: tracing imprints of spin-precession on the most massive black hole binary
- Measurability of precession and eccentricity for heavy binary-black-hole mergers
- Measuring the properties of nearly extremal black holes with gravitational waves
- The anti-aligned spin of GW191109: glitch mitigation and its implications
- Gravitational waves carry information beyond effective spin parameters but it is hard to extract
- Investigating the effect of in-plane spin directions for Precessing BBH systems
- Optimizing the Placement of Numerical Relativity Simulations using a Mismatch Predicting Neural Network