Tracking the precession of compact binaries from their gravitational-wave signal
Patricia Schmidt, Mark Hannam, Sascha Husa, P. Ajith

TL;DR
This paper introduces a straightforward method to track the precession of black-hole binaries using gravitational-wave signals by identifying a quadrupole-aligned frame, improving the analysis of precessing binary waveforms.
Contribution
The paper presents a novel, simple technique to determine the precession dynamics of binary systems directly from gravitational-wave data, aligning waveforms for better modeling.
Findings
Accurately locates the orbital angular momentum direction within 0.05° and 0.2° for test cases.
Effectively reproduces higher-mode amplitudes similar to non-precessing binaries.
Frequency of modes matches the binary's total motion frequency.
Abstract
We present a simple method to track the precession of a black-hole-binary system, using only information from the gravitational-wave (GW) signal. Our method consists of locating the frame from which the magnitude of the modes is maximized, which we denote the "quadrupole-aligned" frame. We demonstrate the efficacy of this method when applied to waveforms from numerical simulations. In the test case of an equal-mass nonspinning binary, our method locates the direction of the orbital angular momentum to within . We then apply the method to a binary that exhibits significant precession. In general a spinning binary's orbital angular momentum is \emph{not} orthogonal to the orbital plane. Evidence that our method locates the direction of rather than the normal of the…
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