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The diffraction patterns of lensed gravitational waves encode information about their propagation speeds.
On the focusing of gravitational radiation
Hans C. Ohanian · 1974
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A diffraction limit on the gravitational lens effect
Haugan Mark P Bontz, Robert J · 1981
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Diffraction in Gravitational Lensing for Compact Objects of Low Mass
S. Deguchi and W. D. Watson · 1986
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Gravitational Lenses
P. Schneider J. Ehlers E.E. Falco · 1992
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Measuring gravitational waves from binary black hole coalescences. i. signal to noise for inspiral, merger, and ringdown
Éanna É. Flanagan and Scott A. Hughes · 1998
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Bounding the mass of the graviton using gravitational-wave observations of inspiralling compact binaries
Clifford M. Will · 1998
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Wave optics in gravitational lensing
Takahiro T. Nakamura and Shuji Deguchi · 1999
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Wave Effects in the Gravitational Lensing of Gravitational Waves from Chirping Binaries
Ryuichi Takahashi and Takashi Nakamura · 2003
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Wave effects in the gravitational lensing of gravitational waves from chirping binaries
Ryuichi Takahashi and Takashi Nakamura · 2003
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Introduction to Gravitational Lensing and Cosmology
P. Schneider · 2006
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Comparison of post-newtonian templates for compact binary inspiral signals in gravitational-wave detectors
Alessandra Buonanno, Bala R. Iyer, Evan Ochsner, Yi Pan, and B. S. Sathyaprakash · 2009
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Constraining the mass of the graviton using coalescing black-hole binaries
D. Keppel and P. Ajith · 2010
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Inspiral-merger-ringdown waveforms for black-hole binaries with nonprecessing spins
P. Ajith, M. Hannam, S. Husa, Y. Chen, B. Brügmann, N. Dorband, D. Müller, F. Ohme, D. Pollney, C. Reisswig, L. Santamaría, and J. Seiler · 2011
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Constraining Lorentz-violating, modified dispersion relations with gravitational waves
S. Mirshekari, N. Yunes, and C. M. Will · 2012
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Massive Gravity
Claudia de Rham · 2014
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Inspiral-merger-ringdown waveforms of spinning, precessing black-hole binaries in the effective-one-body formalism
Yi Pan, Alessandra Buonanno, Andrea Taracchini, Lawrence E. Kidder, Abdul H. Mroué, Harald P. Pfeiffer, Mark A. Scheel, and Béla Szilágyi · 2014
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Projected constraints on Lorentz-violating gravity with gravitational waves
D. Hansen, N. Yunes, and K. Yagi · 2015
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Gravitational-wave sensitivity curves
C. J. Moore, R. H. Cole, and C. P. L. Berry · 2015
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Binary black hole mergers in the first advanced ligo observing run
B. P. Abbott et al · 2016
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Gw151226: Observation of gravitational waves from a 22-solar-mass binary black hole coalescence
B. P. Abbott et al · 2016
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Observation of gravitational waves from a binary black hole merger
B. P. Abbott et al · 2016
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Properties of the Binary Black Hole Merger GW150914
B. P. Abbott et al · 2016
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Tests of general relativity with gw150914
B. P. Abbott et al · 2016
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Prospects for Observing and Localizing Gravitational-Wave Transients with Advanced LIGO, Advanced Virgo and KAGRA
B. P. Abbott et al · 2016
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Gw170104: Observation of a 50-solar-mass binary black hole coalescence at redshift 0.2
B. P. Abbott et al · 2017
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Gw170608: Observation of a 19 solar-mass binary black hole coalescence
B. P. Abbott et al · 2017
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Gw170814: A three-detector observation of gravitational waves from a binary black hole coalescence
B. P. Abbott et al · 2017
Gravitational lensing of gravitational waves: Rotation of polarization plane
Shaoqi Hou, Xi-Long Fan, and Zong-Hong Zhu · 2019
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Probing screening and the graviton mass with gravitational waves
Scott Perkins and Nicolás Yunes · 2019
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The construction and use of lisa sensitivity curves
Travis Robson, Neil J Cornish, and Chang Liug · 2019
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GW190412: Observation of a Binary-Black-Hole Coalescence with Asymmetric Masses
B. P. Abbott et al · 2020
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GW190814: Gravitational waves from the coalescence of a 23 solar mass black hole with a 2.6 solar mass compact object
B. P. Abbott et al · 2020
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Cited alongside, same era.
Gw170817: Observation of gravitational waves from a binary neutron star inspiral
B. P. Abbott et al · 2017
Cited alongside, same era.
Multimessenger time delays from lensed gravitational waves
Tessa Baker and Mark Trodden · 2017
Cited alongside, same era.
Testing the Speed of Gravitational Waves over Cosmological Distances with Strong Gravitational Lensing
T. E. Collett and D. Bacon · 2017
Cited alongside, same era.
Graviton mass bounds
Claudia de Rham, J. Tate Deskins, Andrew J. Tolley, and Shuang-Yong Zhou · 2017
Cited alongside, same era.
Speed of Gravitational Waves from Strongly Lensed Gravitational Waves and Electromagnetic Signals
X.-L. Fan, K. Liao, M. Biesiada, A. Piórkowska-Kurpas, and Z.-H. Zhu · 2017
Cited alongside, same era.
Precise ligo lensing rate predictions for binary black holes
Tjonnie G. F. Li Ken K. Y. Ng, Kaze W. K. Wong and Tom Broadhurst · 2017
Cited alongside, same era.
B. P. Abbott et al · 2020
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B. P. Abbott et al · 2020
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B. P. Abbott et al · 2020
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Testing the nature of gravitational-wave polarizations using strongly lensed signals
Srashti Goyal, K. Haris, Ajit Kumar Mehta, and Parameswaran Ajith · 2020
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Localizing merging black holes with sub-arcsecond precision using gravitational-wave lensing
Otto A. Hannuksela, Thomas E. Collett, Mesut Çalı · 2020
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Phase effects from strong gravitational lensing of gravitational waves
Jose María Ezquiaga, Daniel E. Holz, Wayne Hu, Macarena Lagos, and Robert M. Wald · 2020
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Gravitational wave lensing beyond general relativity: birefringence, echoes and shadows
Jose María Ezquiaga and Miguel Zumalacárregui · 2020
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Multimessenger tests of gravity with weakly lensed gravitational waves
Suvodip Mukherjee, Benjamin D. Wandelt, and Joseph Silk · 2020
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Probing the theory of gravity with gravitational lensing of gravitational waves and galaxy surveys
Suvodip Mukherjee, Benjamin D. Wandelt, and Joseph Silk · 2020
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LENSINGGW: a PYTHON package for lensing of gravitational waves
G. Pagano, O. A. Hannuksela, and T. G. F. Li · 2020
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Lensed or not lensed: determining lensing magnifications for binary neutron star mergers from a single detection
Peter T. H. Pang, Otto A. Hannuksela, Tim Dietrich, Giulia Pagano, and Ian W. Harry · 2020
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B. P. Abbott et al · 2021
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Breaking the mass-sheet degeneracy with gravitational wave interference in lensed events
Paolo Cremonese, Jose María Ezquiaga, and Vincenzo Salzano · 2021
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private communication, May 2021
Srashti Goyal and Shasvath Kapadia · 2021
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Inferring the lensing rate of LIGO-Virgo sources from the stochastic gravitational wave background
Suvodip Mukherjee, Tom Broadhurst, Jose M. Diego, Joseph Silk, and George F. Smoot · 2021
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Gravitational lensing by an extended mass distribution
Slava G. Turyshev and Viktor T. Toth · 2021
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