Only numerical relativity simulations can capture the full complexities of binary black hole mergers. These simulations, however, are prohibitively expensive for direct data analysis applications such as parameter estimation. We present two fast and accurate surrogate models for the outputs of these simulations: the first model, NRSur7dq4, predicts the gravitational waveform and the second model, NRSur7dq4Remnant, predicts the properties of the remnant black hole. These models extend previous seven-dimensional, noneccentric precessing models to higher mass ratios and have been trained against 1528 simulations with mass ratios q≤4 and spin magnitudes χ_1,χ_2≤0.8, with generic spin directions. The waveform model, NRSur7dq4, which begins about...
Gravitational-wave (GW) detectors have begun to observe coalescences of heavy black hole binaries (M...
We present a reduced-order surrogate model of gravitational waveforms fromnon-spinning binary black ...
Simulating a binary black hole coalescence by solving Einstein’s equations is computationally expens...
Only numerical relativity simulations can capture the full complexities of binary black hole mergers...
A generic, noneccentric binary black hole (BBH) system emits gravitational waves (GWs) that are comp...
We present the first surrogate model for gravitational waveforms from the coalescence of precessing ...
The third Gravitational-Wave Transient Catalog (GWTC-3) contains 90 binary coalescence candidates de...
This repository contains all publicly available numerical relativity surrogate data for waveforms pr...
Numerical relativity (NR) simulations provide the most accurate binary black hole gravitational wave...
We present accurate fits for the remnant properties of generically precessing binary black holes, tr...
Gravitational-wave (GW) detectors have begun to observe coalescences of heavy black hole binaries (M...
We present a reduced-order surrogate model of gravitational waveforms fromnon-spinning binary black ...
Simulating a binary black hole coalescence by solving Einstein’s equations is computationally expens...
Only numerical relativity simulations can capture the full complexities of binary black hole mergers...
A generic, noneccentric binary black hole (BBH) system emits gravitational waves (GWs) that are comp...
We present the first surrogate model for gravitational waveforms from the coalescence of precessing ...
The third Gravitational-Wave Transient Catalog (GWTC-3) contains 90 binary coalescence candidates de...
This repository contains all publicly available numerical relativity surrogate data for waveforms pr...
Numerical relativity (NR) simulations provide the most accurate binary black hole gravitational wave...
We present accurate fits for the remnant properties of generically precessing binary black holes, tr...
Gravitational-wave (GW) detectors have begun to observe coalescences of heavy black hole binaries (M...
We present a reduced-order surrogate model of gravitational waveforms fromnon-spinning binary black ...
Simulating a binary black hole coalescence by solving Einstein’s equations is computationally expens...