Reconsidering the consistent use of precessing, higher order multipole models for gravitational wave analyses
arXiv:2601.18916 · doi:10.1093/mnras/stag898
Abstract
The growing number of gravitational-wave (GW) observations allows for constraints to be placed on the underlying population of black holes; current estimates show that black hole spins are small, with binaries more likely to have comparable component masses. Since general relativistic effects, such as spin-induced orbital precession and higher order multipole moments, are more likely to be observed for asymmetric binary systems, a direct measurement remains unlikely. Nevertheless, we continue to consistently probe these effects by performing Bayesian inference with our most accurate and computationally expensive models. As the number of GW detections increases, it may soon become infeasible to consistently use these models for analyses. In this paper, we provide a selection criterion that determines when less accurate and computationally cheaper models can be used without giving biased estimates for the population properties of black holes in the Universe. We show that when using our selection criterion, comparable estimates can be obtained for the underlying mass and spin distribution of black holes for a simulated ``worst-case'' scenario population, while reducing the overall cost of performing Bayesian inference on our population by . We anticipate a reduction of up to in the overall cost for an astrophysically motivated population, since there are fewer events with observable spin-precession and higher order multipole power.
16 pages, 9 figures, 4 appendices
References in corpus (112)
- SciPy 1.0--Fundamental Algorithms for Scientific Computing in Python
- Array Programming with NumPy
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Advanced LIGO
- dynesty: A Dynamic Nested Sampling Package for Estimating Bayesian Posteriors and Evidences
- GW190814: Gravitational Waves from the Coalescence of a 23 M Black Hole with a 2.6 M Compact Object
- Science Case for the Einstein Telescope
- Bilby: A user-friendly Bayesian inference library for gravitational-wave astronomy
- Sensitivity Studies for Third-Generation Gravitational Wave Observatories
- Frequency-domain gravitational waves from non-precessing black-hole binaries. II. A phenomenological model for the advanced detector era
- Robust parameter estimation for compact binaries with ground-based gravitational-wave observations using the LALInference software library
- Frequency-domain gravitational waves from non-precessing black-hole binaries. I. New numerical waveforms and anatomy of the signal
- A simple model of complete precessing black-hole-binary gravitational waveforms
- GW190412: Observation of a Binary-Black-Hole Coalescence with Asymmetric Masses
- The PyCBC search for gravitational waves from compact binary coalescence
- Inspiral-merger-ringdown waveforms for black-hole binaries with non-precessing spins
- An improved effective-one-body model of spinning, nonprecessing binary black holes for the era of gravitational-wave astrophysics with advanced detectors
- Computationally efficient models for the dominant and sub-dominant harmonic modes of precessing binary black holes
- Bayesian inference for compact binary coalescences with BILBY: Validation and application to the first LIGO--Virgo gravitational-wave transient catalogue
- An introduction to Bayesian inference in gravitational-wave astronomy: parameter estimation, model selection, and hierarchical models
- Surrogate models for precessing binary black hole simulations with unequal masses
- Extracting distribution parameters from multiple uncertain observations with selection biases
- Analysis Framework for the Prompt Discovery of Compact Binary Mergers in Gravitational-wave Data
- Towards models of gravitational waveforms from generic binaries II: Modelling precession effects with a single effective precession parameter
- Inspiral-merger-ringdown waveforms of spinning, precessing black-hole binaries in the effective-one-body formalism
- Multipolar Effective-One-Body Waveforms for Precessing Binary Black Holes: Construction and Validation
- IMRPhenomXHM: A multi-mode frequency-domain model for the gravitational wave signal from non-precessing black-hole binaries
- Analysis of spin precession in binary black hole systems including quadrupole-monopole interaction
- 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
- PyCBC Inference: A Python-based parameter estimation toolkit for compact binary coalescence signals
- Surrogate model of hybridized numerical relativity binary black hole waveforms
- Enriching the Symphony of Gravitational Waves from Binary Black Holes by Tuning Higher Harmonics
- Real-time gravitational-wave science with neural posterior estimation
- Toward Early-Warning Detection of Gravitational Waves from Compact Binary Coalescence
- Improving the NRTidal model for binary neutron star systems
- Measuring the binary black hole mass spectrum with an astrophysically motivated parameterization
- First higher-multipole model of gravitational waves from spinning and coalescing black-hole binaries
- 4-OGC: Catalog of gravitational waves from compact-binary mergers
- Validating the effective-one-body model of spinning, precessing binary black holes against numerical relativity
- Phenomenological model for the gravitational-wave signal from precessing binary black holes with two-spin effects
- Detecting binary compact-object mergers with gravitational waves: Understanding and Improving the sensitivity of the PyCBC search
- Bayesian parameter estimation using conditional variational autoencoders for gravitational-wave astronomy
- Hierarchical analysis of gravitational-wave measurements of binary black hole spin-orbit misalignments
- Low-latency analysis pipeline for compact binary coalescences in the advanced gravitational wave detector era
- Including higher order multipoles in gravitational-wave models for precessing binary black holes
- Reconstructing phenomenological distributions of compact binaries via gravitational wave observations
- Fast and Accurate Inference on Gravitational Waves from Precessing Compact Binaries
- Degeneracy between mass and spin in black-hole-binary waveforms
- New binary black hole mergers in the LIGO--Virgo O3a data
- Gravitational-wave parameter estimation with autoregressive neural network flows
- SEOBNRv5PHM: Next generation of accurate and efficient multipolar precessing-spin effective-one-body waveforms for binary black holes
- Laying the foundation of the effective-one-body waveform models SEOBNRv5: improved accuracy and efficiency for spinning non-precessing binary black holes
- PyCBC Live: Rapid Detection of Gravitational Waves from Compact Binary Mergers
- Ready-to-use post-Newtonian gravitational waveforms for binary black holes with non-precessing spins: An update
- Learning Bayesian posteriors with neural networks for gravitational-wave inference
- A novel scheme for rapid parallel parameter estimation of gravitational waves from compact binary coalescences
- Accelerated gravitational-wave parameter estimation with reduced order modeling
- Improving the sensitivity of a search for coalescing binary black holes with non-precessing spins in gravitational wave data
- Frequency domain reduced order model of aligned-spin effective-one-body waveforms with higher-order modes
- New twists in compact binary waveform modelling: a fast time domain model for precession
- General-relativistic precession in a black-hole binary
- Modeling the gravitational wave signature of neutron star black hole coalescences: PhenomNSBH
- Parallelized Inference for Gravitational-Wave Astronomy
- PESummary: the code agnostic Parameter Estimation Summary page builder
- Fast evaluation of multi-detector consistency for real-time gravitational wave searches
- Estimation of the Sensitive Volume for Gravitational-wave Source Populations Using Weighted Monte Carlo Integration
- Can we measure individual black-hole spins from gravitational-wave observations?
- Impact of gravitational radiation higher order modes on single aligned-spin gravitational wave searches for binary black holes
- An aligned-spin neutron-star--black-hole waveform model based on the effective-one-body approach and numerical-relativity simulations
- The final twist: A model of gravitational waves from precessing black-hole binaries through merger and ringdown
- IMRPhenomTP: A phenomenological time domain model for dominant quadrupole gravitational wave signal of coalescing binary black holes
- Measuring gravitational-wave higher-order modes
- PhenomXO4a: a phenomenological gravitational-wave model for precessing black-hole binaries with higher multipoles and asymmetries
- Gravitational wave parameter estimation with compressed likelihood evaluations
- Accelerating gravitational wave parameter estimation with multi-band template interpolation
- Accelerating parameter estimation of gravitational waves from compact binary coalescence using adaptive frequency resolutions
- A generalized precession parameter to interpret gravitational-wave data
- Two-harmonic approximation for gravitational waveforms from precessing binaries
- LISA Sensitivity and SNR Calculations
- Spin-Precession: Breaking the Black Hole--Neutron Star Degeneracy
- Parameter Estimation with a spinning multi-mode waveform model: IMRPhenomHM
- Accurate waveforms for eccentric, aligned-spin binary black holes: The multipolar effective-one-body model SEOBNRv5EHM
- When will we observe binary black holes precessing?
- Measuring precession in asymmetric compact binaries
- LISA Definition Study Report
- New binary black hole mergers in the LIGO-Virgo O3b data
- Relative Binning and Fast Likelihood Evaluation for Gravitational Wave Parameter Estimation
- New effective precession spin for modeling multimodal gravitational waveforms in the strong-field regime
- GW241011 and GW241110: Exploring Binary Formation and Fundamental Physics with Asymmetric, High-Spin Black Hole Coalescence
- VARAHA: A Fast Non-Markovian sampler for estimating Gravitational-Wave posteriors
- Interplay of spin-precession and higher harmonics in the parameter estimation of binary black holes
- Accelerating Multi-Model Bayesian Inference, Model Selection and Systematic Studies for Gravitational Wave Astronomy
- Evidence for subdominant multipole moments and precession in merging black-hole-binaries from GWTC-2.1
- Lightning-Fast Gravitational Wave Parameter Inference through Neural Amortization
- PyROQ: a Python-based Reduced Order Quadrature Building Code for Fast Gravitational Wave Inference
- Adding equatorial-asymmetric effects for spin-precessing binaries into the SEOBNRv5PHM waveform model
- Incorporation of model accuracy in gravitational wave Bayesian inference
- Calibrating signal-to-noise ratio detection thresholds using gravitational-wave catalogs
- Rarity of precession and higher-order multipoles in gravitational waves from merging binary black holes
- Rapid inference and comparison of gravitational-wave population models with neural variational posteriors
- Quick recipes for gravitational-wave selection effects
- Impact of higher harmonics of gravitational radiation on the population inference of binary black holes
- Precision Requirements for Monte Carlo Sums within Hierarchical Bayesian Inference
- Accelerated parameter estimation in Bilby with relative binning
- GWTC-4.0: Population Properties of Merging Compact Binaries
- Waging a Campaign: Results from an Injection-Recovery Study involving 35 numerical Relativity Simulations and three Waveform Models
- New black hole mergers in the LIGO-Virgo O3 data from a gravitational wave search including higher-order harmonics
- Accelerated Sequential Posterior Inference via Reuse for Gravitational-Wave Analyses
- Observability of eccentricity in a population of merging compact binaries
- GWTC-4.0: Searches for Gravitational-Wave Lensing Signatures
- When (not) to trust Monte Carlo approximations for hierarchical Bayesian inference
- The impact of precession and higher-order multipoles for gravitational wave cosmological inference