Surrogate modeling of gravitational waves microlensed by spherically symmetric potentials
Uddeepta Deka, Gopalkrishna Prabhu, Md Arif Shaikh, Shasvath J. Kapadia, Vijay Varma, Scott E. Field

TL;DR
This paper develops surrogate models for gravitational wave microlensing amplification factors, enabling rapid and accurate parameter estimation for microlensed GWs, which was previously computationally prohibitive.
Contribution
The authors introduce surrogate modeling techniques for the time-domain microlensing amplification factor, significantly improving speed and accuracy over traditional numerical methods.
Findings
Surrogates achieve mismatches less than 5e-4 with original models.
Evaluation speed increased by 5 to 1000 times, around 100 ms per evaluation.
Models successfully applied to point-mass and singular isothermal sphere lenses.
Abstract
The anticipated observation of the gravitational microlensing of gravitational waves (GWs) promises to shed light on a host of astrophysical and cosmological questions. However, extracting the parameters of the lens from the modulated GWs requires accurate modeling of the lensing amplification factor, accounting for wave-optics effects. Analytic solutions to the lens equation have not been found to date, except for a handful of simplistic lens models. While numerical solutions to this equation have been developed, the time and computational resources required to evaluate the amplification factor numerically make large-scale parameter estimation of the lens (and source) parameters prohibitive. On the other hand, surrogate modeling of GWs has proven to be a powerful tool to accurately, and rapidly, produce GW templates at arbitrary points in parameter space, interpolating from a finite…
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Taxonomy
TopicsGeophysics and Gravity Measurements · Adaptive optics and wavefront sensing · Pulsars and Gravitational Waves Research
