31 October 2025 to 2 November 2025
MacKinnon Building
Canada/Eastern timezone

High-Order Time Derivatives of Kerr Orbital Functionals

31 Oct 2025, 09:30
15m
113 (MacKinnon Building)

113

MacKinnon Building

Speaker

Alejandro Cardenas-Avendano (Wake Forest University)

Description

Functions of bound Kerr geodesic motion play a central role in many calculations in relativistic astrophysics, ranging from gravitational-wave generation to self-force and radiation-reaction modeling. Although these functions can be expressed as a Fourier series using the geodesic fundamental frequencies, reconstructing them in coordinate time is challenging due to the coupling of the radial and polar motions. In this talk, I will discuss two strategies for performing such reconstructions and their ability to estimate high-order coordinate-time derivatives of the orbital functional. The first method maps Fourier coefficients from Mino to coordinate time; the second method fits a sampled time series of the function to a truncated coordinate‑time Fourier series. While the latter method is prone to overfitting, it yields more accurate reconstructions and derivatives than the mapping, but completely misrepresents the harmonic content of the orbital functional. For the purpose of accurate coordinate-time derivative estimation, I will show how a hybrid method is more suitable to compute high-order derivatives. These results offer a general framework for accurately evaluating higher-order time derivatives along Kerr geodesic worldlines, with direct relevance to applications such as extreme-mass-ratio inspiral kludge waveform modeling, where such derivatives are key ingredients for precise gravitational-wave predictions.

Authors

Alejandro Cardenas-Avendano (Wake Forest University) Mr Lennox Keeble (Princeton University)

Presentation materials

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