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Merger-Ringdown Consistency: A New Test of Strong Gravity using Deep Learning
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The gravitational waves emitted during the coalescence of binary black holes are an excellent probe to test the behaviour of strong gravity. In this paper, we propose a new test called the `merger-ringdown consistency test` that focuses on probing the imprints of the dynamics in strong-gravity around the black-holes during the plunge-merger and ringdown phase. Furthermore, we present a scheme that allows us to efficiently combine information across multiple ringdown observations to perform a statistical null test of GR using the detected BH population. We present a proof-of-concept study for this test using simulated binary black hole ringdowns embedded in the next-generation ground-based detector noise. We demonstrate the feasibility of our test using a deep learning framework, setting a precedence for performing precision tests of gravity with neural networks.
Forward citations
Cited by 2 Pith papers
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Functional inference on deviations from General Relativity
GRANITA reconstructs functional, parameter-dependent deviations from General Relativity in gravitational-wave data using Gaussian process regression with free node values.
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Black Hole Spectroscopy with Conditional Variational Autoencoder
A CVAE trained on simulated ringdown waveforms produces posterior estimates of remnant black hole parameters that match Bayesian inference, including overtones and a braneworld tidal charge parameter.
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