Glitch subtraction from gravitational wave data using adaptive spline fitting
Soumya D. Mohanty, Mohammad A. T. Chowdhury

TL;DR
This paper introduces an adaptive spline fitting method for nonparametric subtraction of diverse, broadband short-duration glitches in gravitational wave data, aiming to improve detection sensitivity without significantly affecting astrophysical signals.
Contribution
The paper presents a novel adaptive spline fitting approach that efficiently estimates and subtracts a wide variety of glitches in gravitational wave data without auxiliary sensors.
Findings
Effective glitch subtraction demonstrated on multiple glitch classes.
Minimal impact on astrophysical signals like GW170817.
Method is computationally fast and adaptable to different glitch morphologies.
Abstract
Transient signals of instrumental and environmental origins ("glitches") in gravitational wave data elevate the false alarm rate of searches for astrophysical signals and reduce their sensitivity. Glitches that directly overlap astrophysical signals hinder their detection and worsen parameter estimation errors. As the fraction of data occupied by detectable astrophysical signals will be higher in next generation detectors, such problematic overlaps could become more frequent. These adverse effects of glitches can be mitigated by estimating and subtracting them out from the data, but their unpredictable waveforms and large morphological diversity pose a challenge. Subtraction of glitches using data from auxiliary sensors as predictors works but not for the majority of cases. Thus, there is a need for nonparametric glitch mitigation methods that do not require auxiliary data, work for a…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Geophysics and Gravity Measurements · Seismic Imaging and Inversion Techniques
