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Morphology of coalescing BBH waveforms are affected by its spins.
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2011
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2012
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2012
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R. O’Shaughnessy, L. London, J. Healy, and D. Shoemaker, “Precession during merger: Strong polarization changes are observationally accessible features of strong-field gravity during binary black hole merger,” Phys. Rev. D
2013
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L. Pekowsky, R. O’Shaughnessy, J. Healy, and D. Shoemaker, “Comparing gravitational waves from nonprecessing and precessing black hole binaries in the corotating frame,” Phys. Rev. D
2013
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2013
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2014
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M. Boyle, L. E. Kidder, S. Ossokine, and H. P. Pfeiffer, “Gravitational-wave modes from precessing black-hole binaries,” 2014
2014
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J. Aasi et al
2015
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2015
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P. Schmidt, F. Ohme, and M. Hannam, “Towards models of gravitational waveforms from generic binaries II: Modelling precession effects with a single effective precession parameter,” Phys. Rev
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2019
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V. Varma, S. E. Field, M. A. Scheel, J. Blackman, D. Gerosa, L. C. Stein, L. E. Kidder, and H. P. Pfeiffer, “Surrogate models for precessing binary black hole simulations with unequal masses,” 2019
2019
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R. Abbott et al
2020
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A. H. Nitz, T. Dent, G. S. Davies, S. Kumar, C. D. Capano, I. Harry, S. Mozzon, L. Nuttall, A. Lundgren, and M. Tápai, “2-OGC: Open gravitational-wave catalog of binary mergers from analysis of public advanced LIGO and virgo data,” The Astrophysical Journal
2020
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T. Venumadhav, B. Zackay, J. Roulet, L. Dai, and M. Zaldarriaga, “New binary black hole mergers in the second observing run of Advanced LIGO and Advanced Virgo,” Phys. Rev. D
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2015
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S. Khan, S. Husa, M. Hannam, F. Ohme, M. Pürrer, X. Jiménez Forteza, and A. Bohé, “Frequency-domain gravitational waves from nonprecessing black-hole binaries. II. A phenomenological model for the advanced detector era,” Phys. Rev
2016
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S. Husa, S. Khan, M. Hannam, M. Pürrer, F. Ohme, X. Jiménez Forteza, and A. Bohé, “Frequency-domain gravitational waves from nonprecessing black-hole binaries. I. New numerical waveforms and anatomy of the signal,” Phys. Rev
2016
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A. Bohé et al
2017
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S. Babak, A. Taracchini, and A. Buonanno, “Validating the effective-one-body model of spinning, precessing binary black holes against numerical relativity,” Phys. Rev
2017
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K. Chatziioannou, A. Klein, N. Yunes, and N. Cornish, “Constructing Gravitational Waves from Generic Spin-Precessing Compact Binary Inspirals,” Phys. Rev
2017
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B. Abbott et al
2017
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2020
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R. Abbott et al
2020
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R. Abbott et al
2020
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B. Abbott et al
2020
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R. Abbott et al
2020
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R. Abbott et al
2020
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R. Abbott et al
2020
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G. Pratten, S. Husa, C. Garcia-Quiros, M. Colleoni, A. Ramos-Buades, H. Estelles, and R. Jaume, “Setting the cornerstone for a family of models for gravitational waves from compact binaries: The dominant harmonic for nonprecessing quasicircular black holes,” Phys. Rev. D
2020
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G. Pratten et al
2020
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A. Ramos-Buades, P. Schmidt, G. Pratten, and S. Husa, “Validity of common modeling approximations for precessing binary black holes with higher-order modes,” Phys. Rev. D
2020
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C. García-Quirós, M. Colleoni, S. Husa, H. Estellés, G. Pratten, A. Ramos-Buades, M. Mateu-Lucena, and R. Jaume, “IMRPhenomXHM: A multi-mode frequency-domain model for the gravitational wave signal from non-precessing black-hole binaries,” 1 2020
2020
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S. Ossokine et al
2020
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S. Khan, F. Ohme, K. Chatziioannou, and M. Hannam, “Including higher order multipoles in gravitational-wave models for precessing binary black holes,” Phys. Rev. D
2020
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E. Fauchon-Jones, C. Kalaghatgi, E. Hamilton, D. Yeeles, C. Hoy, M. Hannam, A. Vano-Vinuales, J. Thompson, L. T. London, and S. Khan, “Bam catalogue of binary black hole simulations,” 2020, In preparation
2020
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M. Pürrer and C.-J. Haster, “Ready for what lies ahead? – Gravitational waveform accuracy requirements for future ground based detectors,” Phys. Rev. Res
2020
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V. Varma, M. Isi, and S. Biscoveanu, “Extracting the Gravitational Recoil from Black Hole Merger Signals,” Phys. Rev. Lett
2020
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C. Kalaghatgi, M. Hannam, and V. Raymond, “Parameter estimation with a spinning multimode waveform model,” Phys. Rev. D
2020
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