Simulating a binary black hole coalescence by solving Einstein’s equations is computationally expensive, requiring days to months of supercomputing time. Using reduced order modeling techniques, we construct an accurate surrogate model, which is evaluated in a millisecond to a second, for numerical relativity (NR) waveforms from nonspinning binary black hole coalescences with mass ratios in [1, 10] and durations corresponding to about 15 orbits before merger. We assess the model’s uncertainty and show that our modeling strategy predicts NR waveforms not used for the surrogate’s training with errors nearly as small as the numerical error of the NR code. Our model includes all spherical-harmonic _(-2)Y_(ℓm) waveform modes resolved by the NR c...
This repository contains all publicly available numerical relativity surrogate data for waveforms pr...
We present a reduced-order surrogate model of gravitational waveforms fromnon-spinning binary black ...
Gravitational-wave (GW) detectors have begun to observe coalescences of heavy black hole binaries (M...
Simulating a binary black hole coalescence by solving Einstein’s equations is computationally expens...
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 ...
Numerical relativity (NR) simulations provide the most accurate binary black hole gravitational wave...
Gravitational wave astrophysics relies heavily on the use of matched filtering both to detect signal...
We propose a solution to the problem of quickly and accurately predicting gravitational waveforms wi...
Gravitational wave astrophysics relies heavily on the use of matched filtering both to detect signal...
Only numerical relativity simulations can capture the full complexities of binary black hole mergers...
This repository contains all publicly available numerical relativity surrogate data for waveforms pr...
We present a reduced-order surrogate model of gravitational waveforms fromnon-spinning binary black ...
Gravitational-wave (GW) detectors have begun to observe coalescences of heavy black hole binaries (M...
Simulating a binary black hole coalescence by solving Einstein’s equations is computationally expens...
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 ...
Numerical relativity (NR) simulations provide the most accurate binary black hole gravitational wave...
Gravitational wave astrophysics relies heavily on the use of matched filtering both to detect signal...
We propose a solution to the problem of quickly and accurately predicting gravitational waveforms wi...
Gravitational wave astrophysics relies heavily on the use of matched filtering both to detect signal...
Only numerical relativity simulations can capture the full complexities of binary black hole mergers...
This repository contains all publicly available numerical relativity surrogate data for waveforms pr...
We present a reduced-order surrogate model of gravitational waveforms fromnon-spinning binary black ...
Gravitational-wave (GW) detectors have begun to observe coalescences of heavy black hole binaries (M...