Numerical relativity is an essential tool in studying the coalescence of binary black holes (BBHs). It is still computationally prohibitive to cover the BBH parameter space exhaustively, making phenomenological fitting formulas for BBH waveforms and final-state properties important for practical applications. We describe a general hierarchical bottom-up fitting methodology to design and calibrate fits to numerical relativity simulations for the three-dimensional parameter space of quasicircular nonprecessing merging BBHs, spanned by mass ratio and by the individual spin components orthogonal to the orbital plane. Particular attention is paid to incorporating the extreme-mass-ratio limit and to the subdominant unequal-spin effects. As an ill...
We compare real and synthetic data directly to complete numerical relativity simulations of binary b...
We compare GW150914 directly to simulations of coalescing binary black holes in full general relativ...
We present and assess a Bayesian method to interpret gravitational wave signals from binary black ho...
Numerical relativity is an essential tool in studying the coalescence of binary black holes (BBHs). ...
For a brief moment, a binary black hole (BBH) merger can be the most powerful astrophysical event in...
For a brief moment, a binary black hole (BBH) merger can be the most powerful astrophysical event in...
We present accurate fits for the remnant properties of generically precessing binary black holes, tr...
We derive an analytic phenomenological expression that predicts the final mass of the black-hole rem...
The behavior of merging black holes (including the emitted gravitational waves and the properties of...
Only numerical relativity simulations can capture the full complexities of binary black hole mergers...
Over the last few years enormous progress has been made in the numerical description of the inspiral...
We compare GW150914 directly to simulations of coalescing binary black holes in full general relativ...
© 2016 American Physical Society. Free to Read. This is the publisher Version of Record Manuscript. ...
We compare real and synthetic data directly to complete numerical relativity simulations of binary b...
We compare GW150914 directly to simulations of coalescing binary black holes in full general relativ...
We present and assess a Bayesian method to interpret gravitational wave signals from binary black ho...
Numerical relativity is an essential tool in studying the coalescence of binary black holes (BBHs). ...
For a brief moment, a binary black hole (BBH) merger can be the most powerful astrophysical event in...
For a brief moment, a binary black hole (BBH) merger can be the most powerful astrophysical event in...
We present accurate fits for the remnant properties of generically precessing binary black holes, tr...
We derive an analytic phenomenological expression that predicts the final mass of the black-hole rem...
The behavior of merging black holes (including the emitted gravitational waves and the properties of...
Only numerical relativity simulations can capture the full complexities of binary black hole mergers...
Over the last few years enormous progress has been made in the numerical description of the inspiral...
We compare GW150914 directly to simulations of coalescing binary black holes in full general relativ...
© 2016 American Physical Society. Free to Read. This is the publisher Version of Record Manuscript. ...
We compare real and synthetic data directly to complete numerical relativity simulations of binary b...
We compare GW150914 directly to simulations of coalescing binary black holes in full general relativ...
We present and assess a Bayesian method to interpret gravitational wave signals from binary black ho...