Neural network method to search for long transient gravitational waves
Francesca Attadio, Leonardo Ricca, Marco Serra, Cristiano Palomba, Pia, Astone, Simone Dall'Osso, Stefano Dal Pra, Sabrina D'Antonio, Matteo Di, Giovanni, Luca D'Onofrio, Paola Leaci, Federico Muciaccia, Lorenzo Pierini,, Francesco Safai Tehrani

TL;DR
This paper introduces a machine learning-based method using convolutional neural networks to efficiently detect long transient gravitational waves, offering a computationally inexpensive alternative to traditional techniques.
Contribution
The authors develop a novel neural network approach combining a classifier and denoiser to improve detection of long transient gravitational waves in interferometric data.
Findings
Achieved 90% detection efficiency at 2% false alarm rate.
Demonstrated robustness against variations in signal frequency evolution.
Effective detection of signals with initial amplitude as low as 2×10^{-23}.
Abstract
We present a new method to search for long transient gravitational waves signals, like those expected from fast spinning newborn magnetars, in interferometric detector data. Standard search techniques are computationally unfeasible (matched filtering) or very demanding (sub-optimal semi-coherent methods). We explored a different approach by means of machine learning paradigms, to define a fast and inexpensive procedure. We used convolutional neural networks to develop a classifier that is able to discriminate between the presence or the absence of a signal. To complement the classification and enhance its effectiveness, we also developed a denoiser. We studied the performance of both networks with simulated colored noise, according to the design noise curve of LIGO interferometers. We show that the combination of the two models is crucial to increase the chance of detection. Indeed, as…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Geophysics and Gravity Measurements
