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The detection of gravitational waves from compact binary mergers by the LIGO/Virgo collaboration has, for the first time, allowed for tests of relativistic gravity in the strong, dynamical and nonlinear regime.
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C. P. Burgess, “Quantum gravity in everyday life: General relativity as an effective field theory,” Living Reviews in Relativity 7
2004
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C. F. Sopuerta, M. Bruni, and L. Gualtieri, “Nonlinear N parameter space-time perturbations: Gauge transformations,” Phys. Rev. D 70
2004
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C. de Rham, J. Francfort, and J. Zhang, “Black hole gravitational waves in the effective field theory of gravity,” Physical Review D 102
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2005
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B. F. Whiting and L. R. Price, “Metric reconstruction from weyl scalars,” Classical and Quantum Gravity 22
2005
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S. Nojiri and S. D. Odintsov, “Introduction to modified gravity and gravitational alternative for dark energy,” eConf C0602061
2006
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S. H. S. Alexander, M. E. Peskin, and M. M. Sheikh-Jabbari, “Leptogenesis from gravity waves in models of inflation,” Phys. Rev. Lett. 96
2006
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2015
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K. Yagi and L. C. Stein, “Black Hole Based Tests of General Relativity,” Class. Quant. Grav. 33
2016
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2016
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V. Cardoso and L. Gualtieri, “Testing the black hole ‘no-hair’ hypothesis,” Class. Quant. Grav. 33
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C. Bambi, “Testing black hole candidates with electromagnetic radiation,” Rev. Mod. Phys. 89
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J. L. Blázquez-Salcedo, F. S. Khoo, and J. Kunz, “Quasinormal modes of einstein-gauss-bonnet-dilaton black holes,” Phys. Rev. D 96
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C. Ding, “Quasinormal ringing of black holes in einstein aether theory,” Physical Review D 96
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S. Endlich, V. Gorbenko, J. Huang, and L. Senatore, “An effective formalism for testing extensions to general relativity with gravitational waves,” Journal of High Energy Physics 2017
2017
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M. Okounkova, L. C. Stein, M. A. Scheel, and D. A. Hemberger, “Numerical binary black hole mergers in dynamical chern-simons gravity: Scalar field,” Physical Review D 96
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M. Maggiore, Gravitational Waves. Vol. 2: Astrophysics and Cosmology (Oxford University Press, 2018)
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K. Prabhu and L. C. Stein, “Black hole scalar charge from a topological horizon integral in einstein-dilaton-gauss-bonnet gravity,” Phys. Rev. D 98
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V. Cardoso, M. Kimura, A. Maselli, and L. Senatore, “Black holes in an effective field theory extension of gr,” Physical Review Letters 121
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O. J. Tattersall and P. G. Ferreira, “Quasi-normal modes of black holes in horndeski gravity,” Physical Review D 97
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2018
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C. Ding, “Gravitational quasinormal modes of black holes in einstein-aether theory,” Nuclear Physics B 938
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V. Cardoso, M. Kimura, A. Maselli, E. Berti, C. F. B. Macedo, and R. McManus, “Parametrized black hole quasinormal ringdown: Decoupled equations for nonrotating black holes,” Phys. Rev. D 99
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R. McManus, E. Berti, C. F. B. Macedo, M. Kimura, A. Maselli, and V. Cardoso, “Parametrized black hole quasinormal ringdown. ii. coupled equations and quadratic corrections for nonrotating black holes,” Phys. Rev. D 100
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N. Wex and M. Kramer, “Gravity Tests with Radio Pulsars,” Universe 6
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M. Okounkova, L. C. Stein, J. Moxon, M. A. Scheel, and S. A. Teukolsky, “Numerical relativity simulation of gw150914 beyond general relativity,” Phys. Rev. D 101
2020
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M. Srivastava, Y. Chen, and S. Shankaranarayanan, “Analytical computation of quasinormal modes of slowly rotating black holes in dynamical chern-simons gravity,” Phys. Rev. D 104
2021
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N. Loutrel, J. L. Ripley, E. Giorgi, and F. Pretorius, “Second-order perturbations of kerr black holes: Formalism and reconstruction of the first-order metric,” Phys. Rev. D 103
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P. Wagle, N. Yunes, and H. O. Silva, “Quasinormal modes of slowly-rotating black holes in dynamical chern-simons gravity,” Phys. Rev. D 105
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