Blind source separation in 3rd generation gravitational-wave detectors
arXiv:2409.06458 · doi:10.1016/j.newar.2024.101707
Abstract
Third generation and future upgrades of current gravitational-wave detectors will present exquisite sensitivities which will allow to detect a plethora of gravitational wave signals. Hence, a new problem to be solved arises: the detection and parameter estimation of overlapped signals. The problem of separating and identifying two signals that overlap in time, space or frequency is something well known in other fields (e.g. medicine and telecommunication). Blind source separation techniques are all those methods that aim at separating two or more unknown signals. This article provides a methodological review of the most common blind source separation techniques and it analyses whether they can be successfully applied to overlapped gravitational wave signals or not, while comparing the limits and advantages of each method.
References in corpus (13)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Gravitational-wave sensitivity curves
- BayesWave: Bayesian Inference for Gravitational Wave Bursts and Instrument Glitches
- A Horizon Study for Cosmic Explorer: Science, Observatories, and Community
- The MBTA Pipeline for Detecting Compact Binary Coalescences in the Third LIGO-Virgo Observing Run
- Bridge Modal Identification using Acceleration Measurements within Moving Vehicles
- Global Analysis of the Gravitational Wave Signal from Galactic Binaries
- Lunar Gravitational-Wave Antenna
- Gravitational-wave confusion background from cosmological compact binaries: Implications for future terrestrial detectors
- Subtracting glitches from gravitational-wave detector data during the third observing run
- Pre-merger localization of compact-binary mergers with third generation observatories
- Addressing the challenges of detecting time-overlapping compact binary coalescences
- A Comprehensive Analysis of the Gravitational Wave Events with the Hilbert-Huang Transform: From Compact Binary Coalescence to Supernova