Assessing gravitational-wave binary black hole candidates with Bayesian odds
arXiv:2008.00509 · doi:10.1103/PhysRevD.104.124039
Abstract
Gravitational waves from the coalescence of binary black holes can be distinguished from noise transients in a detector network through Bayesian model selection by exploiting the coherence of the signal across the network. We present a Bayesian framework for calculating the posterior probability that a signal is of astrophysical origin, agnostic to the specific search strategy, pipeline or search domain with which a candidate is identified. We apply this framework under \textit{identical} assumptions to all events reported in the LIGO-Virgo GWTC-1 catalog, GW190412 and numerous event candidates reported by independent search pipelines by other authors. With the exception of GW170818, we find that all GWTC-1 candidates, and GW190412, have odds overwhelmingly in favour of the astrophysical hypothesis, including GW170729, which was assigned significantly different astrophysical probabilities by the different search pipelines used in GWTC-1. GW170818 is de-facto a single detector trigger, and is therefore of no surprise that it is disfavoured as being produced by an astrophysical source in our framework. We find \textit{three} additional event candidates, GW170121, GW170425 and GW170727, that have significant support for the astrophysical hypothesis, with a probability that the signal is of astrophysical origin of 0.53, 0.74 and 0.64 respectively. We carry out a hierarchical population study which includes these three events in addition to those reported in GWTC-1, finding that the main astrophysical results are unaffected.
23 pages, 11 figures, comments and feedback welcome!
References in corpus (45)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Cosmic Star Formation History
- Advanced LIGO
- GW190814: Gravitational Waves from the Coalescence of a 23 M Black Hole with a 2.6 M Compact Object
- Robust parameter estimation for compact binaries with ground-based gravitational-wave observations using the LALInference software library
- Pulsational Pair-Instability Supernovae
- GW190412: Observation of a Binary-Black-Hole Coalescence with Asymmetric Masses
- Computationally efficient models for the dominant and sub-dominant harmonic modes of precessing binary black holes
- Open data from the first and second observing runs of Advanced LIGO and Advanced Virgo
- BayesWave: Bayesian Inference for Gravitational Wave Bursts and Instrument Glitches
- 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
- 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
- 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
- BayesLine: Bayesian Inference for Spectral Estimation of Gravitational Wave Detector Noise
- 2-OGC: Open Gravitational-wave Catalog of binary mergers from analysis of public Advanced LIGO and Virgo data
- A Highly Spinning and Aligned Binary Black Hole Merger in the Advanced LIGO First Observing Run
- A multipolar effective one body waveform model for spin-aligned black hole binaries
- Characterization of systematic error in Advanced LIGO calibration
- Calibration Uncertainty for Advanced LIGO's First and Second Observing Runs
- Machine-learning non-stationary noise out of gravitational wave detectors
- Accelerated gravitational-wave parameter estimation with reduced order modeling
- The Low Effective Spin of Binary Black Holes and Implications for Individual Gravitational-Wave Events
- Omicron: a tool to characterize transient noise in gravitational-wave detectors
- Detecting Gravitational Waves With Disparate Detector Responses: Two New Binary Black Hole Mergers
- The Most Massive Binary Black Hole Detections and the Identification of Population Outliers
- Binary Black Hole Mergers from LIGO/Virgo O1 and O2: Population Inference Combining Confident and Marginal Events
- Detecting Gravitational Waves in Data with Non-Gaussian Noise
- Biases in parameter estimation from overlapping gravitational-wave signals in the third generation detector era
- A Bayesian approach to the follow-up of candidate gravitational wave signals
- Quantifying the Effect of Power Spectral Density Uncertainty on Gravitational-Wave Parameter Estimation for Compact Binary Sources
- Gravitational-wave inference in the catalog era: evolving priors and marginal events
- Accelerating the evaluation of inspiral-merger-ringdown waveforms with adapted grids
- Dynamic Normalization for Compact Binary Coalescence Searches in Non-Stationary Noise
- Parameter Estimation Bias From Overlapping Binary Black Hole Events In Second Generation Interferometers
- Impacts of overlapping gravitational-wave signals on the parameter estimation: Toward the search for cosmological backgrounds
- A Search for Gravitational Waves from Binary Mergers with a Single Observatory
- Utilizing aLIGO Glitch Classifications to Validate Gravitational-Wave Candidates
- Gravitational-wave selection effects using neural-network classifiers
- Source properties of the lowest signal-to-noise-ratio binary black hole detections
- Gravitational wave detection without boot straps: a Bayesian approach
- Constraining the Gravitational-Wave Afterglow From a Binary Neutron Star Coalescence
- The astrophysical odds of GW151216
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- GWTC-3: Compact Binary Coalescences Observed by LIGO and Virgo During the Second Part of the Third Observing Run
- Hierarchical mergers of stellar-mass black holes and their gravitational-wave signatures
- Binary Black Hole Mergers from LIGO/Virgo O1 and O2: Population Inference Combining Confident and Marginal Events
- Improving significance of binary black hole mergers in Advanced LIGO data using deep learning : Confirmation of GW151216
- The population of merging compact binaries inferred using gravitational waves through GWTC-3
- Inferring the Astrophysical Population of Gravitational Wave Sources in the Presence of Noise Transients
- A follow-up on intermediate-mass black hole candidates in the second LIGO-Virgo observing run with the Bayes Coherence Ratio
- Comparing Bayes factors and hierarchical inference for testing general relativity with gravitational waves
- GWCloud: a searchable repository for the creation and curation of gravitational-wave inference results