Constraining the Deviation of Kerr Metric via Bumpy Parameterization and Particle Swarm Optimization in Extreme Mass-Ratio Inspirals
arXiv:2506.21955 · doi:10.1103/ng1f-ml7m
Abstract
Measurement of deviations in the Kerr metric using gravitational wave (GW) observations will provide a clear signal of new Physics. Previous studies have developed multiple parameterizations (e.g. ``bumpy" spacetime) to characterize such deviations in extreme mass ratio inspirals (EMRI) and employed analyses based on the Fisher information matrix (FIM) formalism to quantify the constraining power of space-borne GW detectors like LISA and Tianqin, e.g., achieving a constraint sensitivity levels of on the dimensionless bumpy parameter under varying source configurations in analytical kluge waveform for LISA. In this paper, we advance prior analyses by integrating particle swarm optimization (PSO) with matched filtering under a restricted parameter search range to enforce a high probability of convergence for PSO. Our results reveal a significant number of degenerate peaks in the likelihood function over the signal parameter space with values that exceed the injected one. This extreme level of degeneracy arises from the involvement of the additional bumpy parameter in the parameter space and introduces systematic errors in parameter estimation. We show that these systematic errors can be mitigated using information contained in the ensemble of degenerate peaks, thereby restoring the reliability of astrophysical inferences about EMRI systems from GW observations. This study highlights the critical importance of accounting for such degeneracies, which are absent in FIM-based analyses, and points out future directions for improving EMRI data analysis.
25 pages, 12 figures
References in corpus (12)
- Using LISA EMRI sources to test off-Kerr deviations in the geometry of massive black holes
- Bumpy Black Holes in Alternate Theories of Gravity
- The Mock LISA Data Challenges: from Challenge 3 to Challenge 4
- Science with the TianQin observatory: Preliminary result on extreme-mass-ratio inspirals
- The Mock LISA Data Challenges: from Challenge 1B to Challenge 3
- LISACode : A scientific simulator of LISA
- An algorithm for detection of extreme mass ratio inspirals in LISA data
- Gravitational waves from extreme mass ratio inspirals around bumpy black holes
- Bayesian inference on EMRI signals using low frequency approximations
- A GPU-accelerated semi-coherent hierarchical search for stellar-mass binary inspiral signals in LISA
- Secondary spins of extreme mass ratio inspirals: A probe to the formation channels
- Assessing the systematic errors of extreme-mass-ratio inspirals waveforms for testing general relativity