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Supermassive black hole binaries (SMBHBs) are expected to be detected by the future space-based gravitational-wave detector LISA with a large signal-to-noise ratio (SNR).
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M. Giesler, M. Isi, M. A. Scheel, and S. A. Teukolsky, Black hole ringdown: The importance of overtones, Physical Review X 9
2019
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M. Isi, M. Giesler, W. M. Farr, M. A. Scheel, and S. A. Teukolsky, Testing the no-hair theorem with GW150914, Physical Review Letters 123
2019
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G. Carullo, W. D. Pozzo, and J. Veitch, Observational black hole spectroscopy: A time-domain multimode analysis of GW150914, Physical Review D 99
2019
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V. Baibhav, E. Berti, and V. Cardoso, LISA parameter estimation and source localization with higher harmonics of the ringdown, Physical Review D 101
2020
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S. Bhagwat, X. J. Forteza, P. Pani, and V. Ferrari, Ringdown overtones, black hole spectroscopy, and no-hair theorem tests, Physical Review D 101
2020
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2013
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A. Klein, N. Cornish, and N. Yunes, Gravitational waveforms for precessing, quasicircular binaries via multiple scale analysis and uniform asymptotics: The near spin alignment case, Physical Review D 88
2013
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2013
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E. Berti and A. Klein, Mixing of spherical and spheroidal modes in perturbed kerr black holes, Physical Review D 90
2014
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L. London, D. Shoemaker, and J. Healy, Modeling ringdown: Beyond the fundamental quasinormal modes, Physical Review D 90
2014
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J. Meidam, M. Agathos, C. V. D. Broeck, J. Veitch, and B. Sathyaprakash, Testing the no-hair theorem with black hole ringdowns using TIGER, Physical Review D 90
2014
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W. D. Vousden, W. M. Farr, and I. Mandel, Dynamic temperature selection for parallel tempering in markov chain monte carlo simulations, Monthly Notices of the Royal Astronomical Society 455
2015
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S. Husa, S. Khan, M. Hannam, M. Pürrer, F. Ohme, X. J. Forteza, and A. Bohé, Frequency-domain gravitational waves from nonprecessing black-hole binaries. i. new numerical waveforms and anatomy of the signal, Phys. Rev. D 93
2016
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C. D. Capano and A. H. Nitz, Binary black hole spectroscopy: A no-hair test of GW190814 and GW190412, Physical Review D 102
2020
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2021
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S. Bhagwat and C. Pacilio, Merger-ringdown consistency: A new test of strong gravity using deep learning, Physical Review D 104
2021
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R. Abbott and others. (LIGO Scientific Collaboration and Virgo Collaboration), Tests of general relativity with binary black holes from the second ligo-virgo gravitational-wave transient catalog, Phys. Rev. D 103
2021
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J. C. Bustillo, P. D. Lasky, and E. Thrane, Black-hole spectroscopy, the no-hair theorem, and GW150914: Kerr versus occam, Physical Review D 103
2021
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S. Marsat, J. G. Baker, and T. D. Canton, Exploring the bayesian parameter estimation of binary black holes with LISA, Physical Review D 103
2021
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J.-B. Bayle, O. Hartwig, and M. Staab, Adapting time-delay interferometry for LISA data in frequency, Physical Review D 104
2021
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N. J. Cornish, Heterodyned likelihood for rapid gravitational wave parameter inference, Physical Review D 104
2021
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P. Amaro-Seoane et al. , Astrophysics with the laser interferometer space antenna (2022)
2022
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R. Cotesta, G. Carullo, E. Berti, and V. Cardoso, Analysis of ringdown overtones in GW150914, Physical Review Letters 129
2022
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G. Pratten, A. Klein, C. J. Moore, H. Middleton, N. Steinle, P. Schmidt, and A. Vecchio, On the lisa science performance in observations of short-lived signals from massive black hole binary coalescences (2022)
2022
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M. Le Jeune and S. Babak, Lisa data challenge sangria (ldc2a) (2022)
2022
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M. H.-Y. Cheung, V. Baibhav, E. Berti, V. Cardoso, G. Carullo, R. Cotesta, W. Del Pozzo, F. Duque, T. Helfer, E. Shukla, and K. W. K. Wong, Nonlinear effects in black hole ringdown (2022)
2022
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K. Mitman, M. Lagos, L. C. Stein, S. Ma, L. Hui, Y. Chen, N. Deppe, F. Hébert, L. E. Kidder, J. Moxon, M. A. Scheel, S. A. Teukolsky, W. Throwe, and N. L. Vu, Nonlinearities in black hole ringdowns (2022)
2022
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2023
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