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The direct observation of gravitational waves with Advanced LIGO and Advanced Virgo offers novel opportunities to test general relativity in strong-field, highly dynamical regimes.
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C. Wu, V. Mandic, and T. Regimbau, “Accessibility of the Gravitational-Wave Background Due to Binary Coalescences to Second and Third Generation Gravitational-Wave Detectors,” Phys. Rev. D 85
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2012
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2012
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J. Gair, M. Vallisneri, S. L. Larson, and J. G. Baker, “Testing General Relativity with Low-Frequency, Space-Based Gravitational-Wave Detectors,” Living Rev. Rel. 16
2013
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Yoichi Aso, Yuta Michimura, Kentaro Somiya, Masaki Ando, Osamu Miyakawa, Takanori Sekiguchi, Daisuke Tatsumi, and Hiroaki Yamamoto, “Interferometer design of the KAGRA gravitational wave detector,” Phys. Rev. D 88
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2015
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2015
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2015
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K. Crocker, V. Mandic, T. Regimbau, K. Belczynski, W. Gladysz, K. Olive, T. Prestegard, and E. Vangioni, “Model of the Stochastic Gravitational-Wave Background Due to Core Collapse to Black Holes,” Phys. Rev. D 92
2015
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T. Narikawa, K. Ueno, H. Tagoshi, T. Tanaka, N. Kanda, and T. Nakamura, “Detectability of Bigravity with Graviton Oscillations using Gravitational Wave Observations,” Phys. Rev. D 91
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2015
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N. J. Cornish and J. D. Romano, “When is a Gravitational-Wave Signal Stochastic?” Phys. Rev. D 92
2015
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D. Gerosa, U. Sperhake, and C. D. Ott, “Numerical Simulations of Stellar Collapse in Scalar-Tensor Theories of Gravity,” Class. Quantum Gravity 33
2016
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S. E. Gossan, P. Sutton, A. Stuver, M. Zanolin, K. Gill, and C. D. Ott, “Observing Gravitational Waves from Core-Collapse Supernovae in the Advanced Detector Era,” Phys. Rev. D 93
2016
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Kent Yagi, Leo C. Stein, and Nicolas Yunes, “Challenging the Presence of Scalar Charge and Dipolar Radiation in Binary Pulsars,” Phys. Rev. D93
2016
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E. Barausse, N. Yunes, and K. Chamberlain, “Theory-Agnostic Constraints on Black-Hole Dipole Radiation with Multiband Gravitational-Wave Astrophysics,” Phys. Rev. Lett. 116
2016
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2016
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2016
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V. A. Kostelecky and M. Mewes, “Testing Local Lorentz Invariance with Gravitational Waves,” Phys. Lett. B 757
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N. Yunes, K. Yagi, and F. Pretorius, “Theoretical Physics Implications of the Binary Black-Hole Mergers GW150914 and GW151226,” Phys. Rev. D 94
2016
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T. Callister, L. Sammut, S. Qiu, I. Mandel, and E. Thrane, “Limits of Astrophysics with Gravitational-Wave Backgrounds,” Phys. Rev. X 6
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C. de Rham, J. T. Deskins, A. J. Tolley, and S.-Y. Zhou, “Graviton mass bounds,” Reviews of Modern Physics 89
2017
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2017
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J. D. Romano and N. J. Cornish, “Detection Methods for Stochastic Gravitational-Wave Backgrounds: A Unified Treatment,” Living Rev. Rel. 20
2017
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B. P. Abbott, R. Abbott, T. D. Abbott, M. R. Abernathy, F. Acernese, K. Ackley, C. Adams, T. Adams, P. Addesso, R. X. Adhikari, et al. , “Directional Limits on Persistent Gravitational Waves from Advanced LIGO’s First Observing Run,” Phys. Rev. Lett. 118
2017
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M. Isi, M. Pitkin, and A. J. Weinstein, “Probing dynamical gravity with the polarization of continuous gravitational waves,” Phys. Rev. D 96
2017
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K. Crocker, T. Prestegard, V. Mandic, T. Regimbau, K. Olive, and E. Vangioni, “Systematic Study of the Stochastic Gravitational-Wave Background Due to Stellar Core Collapse,” Phys. Rev. D. 95
2017
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M. Isi and L. Stein, “Stochastic gravitational-wave energy density in beyond-GR gravity,” In preparation (2017)
2017
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