Search for exotic gravitational wave signals beyond general relativity using deep learning

Fuente: arXiv
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Main Authors: Wang, Yu-Xin, Wei, Xiaotong, Li, Chun-Yue, Sun, Tian-Yang, Jin, Shang-Jie, Wang, He, Cui, Jing-Lei, Zhang, Jing-Fei, Zhang, Xin
Format: Preprint
Published: 2024
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author Wang, Yu-Xin
Wei, Xiaotong
Li, Chun-Yue
Sun, Tian-Yang
Jin, Shang-Jie
Wang, He
Cui, Jing-Lei
Zhang, Jing-Fei
Zhang, Xin
author_facet Wang, Yu-Xin
Wei, Xiaotong
Li, Chun-Yue
Sun, Tian-Yang
Jin, Shang-Jie
Wang, He
Cui, Jing-Lei
Zhang, Jing-Fei
Zhang, Xin
contents The direct detection of gravitational waves by LIGO has confirmed general relativity (GR) and sparked rapid growth in gravitational wave (GW) astronomy. However, subtle post-Newtonian (PN) deviations observed during the analysis of high signal-to-noise ratio events from the observational runs suggest that standard waveform templates, which assume strict adherence to GR, might overlook signals from alternative theories of gravity. Incorporating these exotic signals into traditional search algorithms is computationally infeasible due to the vast template space required. This paper introduces a proof-of-principle deep learning framework for detecting exotic GW signals, leveraging neural networks trained on GR-based templates. Through their generalization ability, neural networks learn intricate features from the data, enabling the detection of signals that deviate from GR. We present the first study evaluating the capability of deep learning to detect beyond-GR signals, including a variety of PN orders. Our model achieves rapid and accurate identification of exotic GW signals across different luminosity distances, with performance comparable to GR-based detections. In particular, applying the model to the GW150914 event demonstrates excellent performance, highlighting the potential of AI-driven methods for detecting previously overlooked signals beyond GR. This work paves the way for new discoveries in gravitational wave astronomy, enabling the detection of signals that might escape traditional search pipelines.
format Preprint
id arxiv_https___arxiv_org_abs_2410_20129
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Search for exotic gravitational wave signals beyond general relativity using deep learning
Wang, Yu-Xin
Wei, Xiaotong
Li, Chun-Yue
Sun, Tian-Yang
Jin, Shang-Jie
Wang, He
Cui, Jing-Lei
Zhang, Jing-Fei
Zhang, Xin
General Relativity and Quantum Cosmology
Cosmology and Nongalactic Astrophysics
High Energy Physics - Phenomenology
The direct detection of gravitational waves by LIGO has confirmed general relativity (GR) and sparked rapid growth in gravitational wave (GW) astronomy. However, subtle post-Newtonian (PN) deviations observed during the analysis of high signal-to-noise ratio events from the observational runs suggest that standard waveform templates, which assume strict adherence to GR, might overlook signals from alternative theories of gravity. Incorporating these exotic signals into traditional search algorithms is computationally infeasible due to the vast template space required. This paper introduces a proof-of-principle deep learning framework for detecting exotic GW signals, leveraging neural networks trained on GR-based templates. Through their generalization ability, neural networks learn intricate features from the data, enabling the detection of signals that deviate from GR. We present the first study evaluating the capability of deep learning to detect beyond-GR signals, including a variety of PN orders. Our model achieves rapid and accurate identification of exotic GW signals across different luminosity distances, with performance comparable to GR-based detections. In particular, applying the model to the GW150914 event demonstrates excellent performance, highlighting the potential of AI-driven methods for detecting previously overlooked signals beyond GR. This work paves the way for new discoveries in gravitational wave astronomy, enabling the detection of signals that might escape traditional search pipelines.
title Search for exotic gravitational wave signals beyond general relativity using deep learning
topic General Relativity and Quantum Cosmology
Cosmology and Nongalactic Astrophysics
High Energy Physics - Phenomenology
url https://arxiv.org/abs/2410.20129