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<tt>BHaHAHA</tt> : a fast, robust apparent horizon finder library for numerical relativity

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Authors: Zachariah B Etienne, Thiago Assumpção, Leonardo Rosa Werneck, Samuel D Tootle

Year

2026

Paper ID

48640

Status

Peer-reviewed

Abstract Read

~2 min

Abstract Words

192

Citations

0

Abstract

Abstract Apparent horizon (AH) finders are essential for characterizing black holes and excising their interiors in numerical relativity (NR) simulations. However, open-source AH finders to date are tightly coupled to individual NR codes. We introduce BHaHAHA , the BlackHoles@Home AH Algorithm, the first open-source, infrastructure-agnostic library for AH finding in NR. BHaHAHA implements the first-ever hyperbolic flow-based approach, recasting the elliptic partial differential equation for a marginally outer trapped surface as a damped nonlinear wave equation. To enhance performance, BHaHAHA incorporates a multigrid-inspired refinement strategy, an over-relaxation technique, and OpenMP parallelization. When compared to a naïve hyperbolic relaxation implementation, these enhancements result in 64x speedups for difficult common-horizon finds on a single spacetime slice, enabling BHaHAHA to achieve runtimes within 10% of the widely used (single-core) AHFinderDirect and outperform it on multiple cores. For dynamic horizon tracking with typical core counts on a high-performance-computing cluster, BHaHAHA is approximately 2.1 times faster than AHFinderDirect at accuracies limited by interpolation of metric data from the host NR code. Implemented and tested in both the Einstein Toolkit and BlackHoles@Home , BHaHAHA demonstrates that hyperbolic relaxation can be a robust, versatile, and performant approach for AH finding.

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  • This paper contributes to the Quantum Machine Learning research area in the Quantum Articles archive.
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  • Abstract Apparent horizon (AH) finders are essential for characterizing black holes and excising their interiors in numerical relativity (NR) simulations.

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