Parameter estimation of protoneutron stars from gravitational wave signals using the Hilbert-Huang transform
arXiv:2411.08407 · doi:10.1103/PhysRevD.110.104020
Abstract
Core-collapse supernovae (CCSNe) are potential multimessenger events detectable by current and future gravitational wave (GW) detectors. The GW signals emitted during these events are expected to provide insights into the explosion mechanism and the internal structures of neutron stars. In recent years, several studies have empirically derived the relationship between the frequencies of the GW signals originating from the oscillations of protoneutron stars (PNSs) and the physical parameters of these stars. This study applies the Hilbert-Huang transform (HHT) [Proc. R. Soc. A 454, 903 (1998)] to extract the frequencies of these modes to infer the physical properties of the PNSs. The results exhibit comparable accuracy to a short-time Fourier transform-based estimation, highlighting the potential of this approach as a complementary method for extracting physical information from GW signals of CCSNe.
12 pages, 12 figures
References in corpus (14)
- Advanced LIGO
- Exploring the Sensitivity of Next Generation Gravitational Wave Detectors
- Gravitational-wave sensitivity curves
- BayesWave: Bayesian Inference for Gravitational Wave Bursts and Instrument Glitches
- Coherent method for detection of gravitational wave bursts
- The BayesWave analysis pipeline in the era of gravitational wave observations
- Gravitational wave asteroseismology with protoneutron stars
- A New Method to Observe Gravitational Waves emitted by Core Collapse Supernovae
- Deep learning for multimessenger core-collapse supernova detection
- Dependence of outer boundary condition on protoneutron star asteroseismology with gravitational-wave signatures
- Inferring Astrophysical Parameters of Core-Collapse Supernovae from their Gravitational-Wave Emission
- Application of the Hilbert-Huang Transform to the Search for Gravitational Waves
- LSTM and CNN application for core-collapse supernova search in gravitational wave real data
- Application of the Hilbert-Huang transform for analyzing standing-accretion-shock-instability induced gravitational waves in a core-collapse supernova