Energy scales and black hole pseudospectra: the structural role of the scalar product
Edgar Gasperin, Jos\'e Luis Jaramillo

TL;DR
This paper investigates how the choice of scalar product, based on physical energy scales, influences the analysis of black hole quasinormal mode instabilities and their applications in gravitational wave physics.
Contribution
It establishes a physically motivated scalar product framework, demonstrates the robustness of QNM instability analysis, and introduces new concepts like epsilon-dual QNM expansions for black hole spectroscopy.
Findings
QNM instability is not an artifact of numerical schemes.
Explicit QNM resonant expansions for gravitational waveforms.
Spiked perturbations more effectively trigger QNM instabilities.
Abstract
A pseudospectrum analysis has recently provided evidence of a potential generic instability of black hole (BH) quasinormal mode (QNM) overtones under high-frequency perturbations. Such instability analysis depends on the assessment of the size of perturbations. This is encoded in the scalar product and its choice is not unique. We address the impact of the scalar product choice, founding it on the physical energy scales of the problem. The article is organized in three parts: basics, applications and heuristic proposals. In the first part, we revisit the energy scalar product used in the hyperboloidal approach to QNMs, extending previous effective analyses and placing them on solid spacetime basis. The second part focuses on applications of the scalar product in the QNM problem: i) we demonstrate that the QNM instability is not an artifact of previous spectral numerical schemes, by…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Astrophysical Phenomena and Observations · Pulsars and Gravitational Waves Research
