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Tests of general relativity (GR) can be systematically biased when our waveform models are inaccurate.
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Michalis Agathos, Walter Del Pozzo, Tjonnie GF Li, Chris Van Den Broeck, John Veitch, and Salvatore Vitale, “Tiger: A data analysis pipeline for testing the strong-field dynamics of general relativity with gravitational wave signals from coalescing compact binaries,” Physical Review D 89
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Graham P. Smith, Mathilde Jauzac, John Veitch, Will M. Farr, Richard Massey, and Johan Richard, “What if LIGO’s gravitational wave detections are strongly lensed by massive galaxy clusters?” Monthly Notices of the Royal Astronomical Society 475
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Masamune Oguri, “Effect of gravitational lensing on the distribution of gravitational waves from distant binary black hole mergers,” Monthly Notices of the Royal Astronomical Society 480
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2018
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Tom Broadhurst, Jose M. Diego, and George Smoot III, “Reinterpreting Low Frequency LIGO/Virgo Events as Magnified Stellar-Mass Black Holes at Cosmological Distances,” (2018), 10.48550/arxiv.1802.05273
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2018
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Kwun-Hang Lai, Otto A. Hannuksela, Antonio Herrera-Martín, Jose M. Diego, Tom Broadhurst, and Tjonnie G. F. Li, “Discovering intermediate-mass black hole lenses through gravitational wave lensing,” Physical Review D 98
2018
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Pierre Christian, Salvatore Vitale, and Abraham Loeb, “Detecting stellar lensing of gravitational waves with ground-based observatories,” Physical Review D 98
2018
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G. P. Smith, M. Bianconi, M. Jauzac, J. Richard, A. Robertson, C. P. L. Berry, R. Massey, K. Sharon, W. M. Farr, and J. Veitch, “Deep and rapid observations of strong-lensing galaxy clusters within the sky localisation of GW170814,” Monthly Notices of the Royal Astronomical Society 485
2018
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Simon Birrer and Adam Amara, “Lenstronomy: multi-purpose gravitational lens modelling software package,” Physics of the Dark Universe 22
2018
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S. Basak, A. Ganguly, K. Haris, S. Kapadia, A. K. Mehta, and P. Ajith, “Constraints on Compact Dark Matter from Gravitational Wave Microlensing,” The Astrophysical Journal Letters 926
2022
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2022
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Oleg Bulashenko and Helena Ubach, “Lensing of gravitational waves: universal signatures in the beating pattern,” Journal of Cosmology and Astroparticle Physics 2022
2022
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2022
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Gregory Ashton, Moritz Huebner, Paul D. Lasky, Colm Talbot, Kendall Ackley, Sylvia Biscoveanu, Qi Chu, Atul Divarkala, Paul J. Easter, Boris Goncharov, Francisco Hernandez Vivanco, Jan Harms, Marcus E. Lower, Grant D. Meadors, Denyz Melchor, Ethan Payne, Matthew D. Pitkin, Jade Powell, Nikhil Sarin, Rory J. E. Smith, and Eric Thrane, “Bilby: A user-friendly Bayesian inference library for gravitational-wave astronomy,” The Astrophysical Journal Supplement Series 241
2018
Cited alongside, same era.
O. A. Hannuksela, K. Haris, K. K. Y. Ng, S. Kumar, A. K. Mehta, D. Keitel, T. G. F. Li, and P. Ajith, “Search for gravitational lensing signatures in LIGO-Virgo binary black hole events,” The Astrophysical Journal 874
2019
Cited alongside, same era.
Sunghoon Jung and Chang Sub Shin, “Gravitational-wave fringes at ligo: Detecting compact dark matter by gravitational lensing,” Phys. Rev. Lett. 122
2019
Cited alongside, same era.
José María Diego, Otto A Hannuksela, Patrick L Kelly, G Pagano, T Broadhurst, K Kim, Tjonnie Guang Feng Li, and George Fitzgerald Smoot, “Observational signatures of microlensing in gravitational waves at ligo/virgo frequencies,” Astronomy & Astrophysics 627
2019
Cited alongside, same era.
Sebastian Khan, Katerina Chatziioannou, Mark Hannam, and Frank Ohme, “Phenomenological model for the gravitational-wave signal from precessing binary black holes with two-spin effects,” Physical Review D 100
2019
Cited alongside, same era.
2020
Cited alongside, same era.
Peter T. H. Pang, Otto A. Hannuksela, Tim Dietrich, Giulia Pagano, and Ian W. Harry, “Lensed or not lensed: Determining lensing magnifications for binary neutron star mergers from a single detection,” Monthly Notices of the Royal Astronomical Society 495
2020
Cited alongside, same era.
Ashish Kumar Meena and Jasjeet Singh Bagla, “Gravitational lensing of gravitational waves: wave nature and prospects for detection,” Monthly Notices of the Royal Astronomical Society 492
2020
Cited alongside, same era.
2022
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Jose Maria Ezquiaga, Wayne Hu, Macarena Lagos, Meng-Xiang Lin, and Fei Xu, “Modified gravitational wave propagation with higher modes and its degeneracies with lensing,” Journal of Cosmology and Astroparticle Physics 2022
2022
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2022
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Shuo Cao, Jingzhao Qi, Zhoujian Cao, Marek Biesiada, Wei Cheng, and Zong-Hong Zhu, “Direct measurement of the distribution of dark matter with strongly lensed gravitational waves,” Astronomy and Astrophysics 659
2022
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Brian O’Reilly, Marica Branchesi, Sadakazu Haino, Gianluca Gemme, Michael Coughlin, and Leo Singer, “Noise curves used for simulations in the update of the observing scenarios paper,” (2022)
2022
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2023
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2023
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Ajit Kumar Mehta, Alessandra Buonanno, Roberto Cotesta, Abhirup Ghosh, Noah Sennett, and Jan Steinhoff, “Tests of general relativity with gravitational-wave observations using a flexible theory-independent method,” Physical Review D 107
2023
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2023
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2023
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2023
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Anna Liu, Isaac C F Wong, Samson H W Leong, Anupreeta More, Otto A Hannuksela, and Tjonnie G F Li, “Exploring the hidden universe: a novel phenomenological approach for recovering arbitrary gravitational-wave millilensing configurations,” Monthly Notices of the Royal Astronomical Society 525
2023
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2023
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2023
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Alvin K.Y. Li, Rico K.L. Lo, Surabhi Sachdev, JunoC.L. Chan, E.T. Lin, Tjonnie G.F. Li, and Alan J. Weinstein, “Targeted subthreshold search for strongly lensed gravitational-wave events,” Physical Review D 107
2023
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Zhao-Feng Wu, Lok W L Chan, Martin Hendry, and Otto A Hannuksela, “Reducing the impact of weak-lensing errors on gravitational-wave standard sirens,” Monthly Notices of the Royal Astronomical Society 522
2023
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Aditya Vijaykumar, Ajit Kumar Mehta, and Apratim Ganguly, “Detection and parameter estimation challenges of Type-II lensed binary black hole signals,” Phys. Rev. D 108
2023
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2023
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2023
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Wolfram Research, Inc., “Mathematica, Version 14.1,” (2024), champaign, IL
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