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The detection of gravitational waves (GW) with an electromagnetic counterpart enabled the first Hubble Constant $H_0$ measurement through the standard siren method.
1901
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1907
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1907
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1908
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B. F. Schutz, Determining the Hubble constant from gravitational wave observations, Nature 323
1986
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K. Belczynski, V. Kalogera, and T. Bulik, A comprehensive study of binary compact objects as gravitational wave sources: Evolutionary channels, rates, and physical properties, The Astrophysical Journal 572
2002
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2006
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2007
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J. E. Greene and L. C. Ho, The mass function of active black holes in the local universe, The Astrophysical Journal 667
2007
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P. F. Hopkins, G. T. Richards, and L. Hernquist, An observational determination of the bolometric quasar luminosity function, The Astrophysical Journal 654
2007
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2009
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2009
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2009
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J. E. Greene and L. C. Ho, Erratum: “the mass function of active black holes in the local universe” (2007, apj, 667, 131), The Astrophysical Journal 704
2009
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2012
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C. L. Rodriguez, C.-J. Haster, S. Chatterjee, V. Kalogera, and F. A. Rasio, DYNAMICAL FORMATION OF THE GW150914 BINARY BLACK HOLE, The Astrophysical Journal 824
2016
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L. P. Singer, H.-Y. Chen, D. E. Holz, W. M. Farr, L. R. Price, V. Raymond, S. B. Cenko, N. Gehrels, J. Cannizzo, M. M. Kasliwal, S. Nissanke, M. Coughlin, B. Farr, A. L. Urban, S. Vitale, J. Veitch, P. Graff, C. P. L. Berry, S. Mohapatra, and I. Mandel, GOING THE DISTANCE: MAPPING HOST GALAXIES OF LIGO AND VIRGO SOURCES IN THREE DIMENSIONS USING LOCAL COSMOGRAPHY AND TARGETED FOLLOW-UP, The Astrophysical Journal 829
2016
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L. P. Singer and L. R. Price, Rapid bayesian position reconstruction for gravitational-wave transients, Phys. Rev. D 93
2016
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2016
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B. P. Abbott, R. Abbott, T. D. Abbott, F. Acernese, K. Ackley, et al. (LIGO Scientific Collaboration and Virgo Collaboration), Gw170817: Observation of gravitational waves from a binary neutron star inspiral, Phys. Rev. Lett. 119
2017
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2017
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2017
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I. Bartos, Z. Haiman, Z. Marka, B. D. Metzger, N. C. Stone, and S. Marka, Gravitational-wave localization alone can probe origin of stellar-mass black hole mergers, Nature Communications 8
2017
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V. Gayathri, J. Healy, J. Lange, B. O’Brien, M. Szczepanczyk, I. Bartos, M. Campanelli, S. Klimenko, C. O. Lousto, and R. O’Shaughnessy, Measuring the Hubble Constant with GW190521 as an Eccentric black hole Merger and Its Potential Electromagnetic Counterpart, ApJ 908
2021
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M. Zevin, S. S. Bavera, C. P. L. Berry, V. Kalogera, T. Fragos, P. Marchant, C. L. Rodriguez, F. Antonini, D. E. Holz, and C. Pankow, One channel to rule them all? constraining the origins of binary black holes using multiple formation pathways, The Astrophysical Journal 910
2021
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2022
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2017
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LIGO Scientific Collaboration, LIGO Algorithm Library - LALSuite , free software (GPL) (2018)
2018
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2018
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2019
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2019
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W. M. Farr, M. Fishbach, J. Ye, and D. E. Holz, A future percent-level measurement of the hubble expansion at redshift 0.8 with advanced ligo, ApJ 883
2019
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K. E. S. Ford and B. McKernan, Ligo tells us liners are not optically thick riafs, Monthly Notices of the Royal Astronomical Society: Letters 490
2019
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B. P. Abbott, R. Abbott, T. D. Abbott, S. Abraham, F. Acernese, K. Ackley, C. Adams, V. B. Adya, C. Affeldt, M. Agathos, K. Agatsuma, N. Aggarwal, O. D. Aguiar, L. Aiello, A. Ain, P. Ajith, T. Akutsu, G. Allen, A. Allocca, M. A. Aloy, P. A. Altin, A. Amato, A. Ananyeva, S. B. Anderson, W. G. Anderson, M. Ando, S. V. Angelova, S. Antier, S. Appert, K. Arai, K. Arai, Y. Arai, S. Araki, A. Araya, M. C. Araya, J. S. Areeda, M. Arene, N. Aritomi, N. Arnaud, K. G. Arun, S. Ascenzi, G. Ashton, Y. Aso, S. M. Aston, P. Astone, F. Aubin, P. Aufmuth, K. AultONeal, C. Austin, V. Avendano, A. Avila-Alvarez, S. Babak, P. Bacon, F. Badaracco, M. K. M. Bader, S. W. Bae, Y. B. Bae, L. Baiotti, and Others, Prospects for observing and localizing gravitational-wave transients with advanced ligo, advanced virgo and kagra, Living Reviews in Relativity 23
2020
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2022
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2022
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2022
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2022
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H.-Y. Chen, C.-J. Haster, S. Vitale, W. M. Farr, and M. Isi, A standard siren cosmological measurement from the potential gw190521 electromagnetic counterpart ztf19abanrhr, Monthly Notices of the Royal Astronomical Society 513
2022
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P. Petrov, L. P. Singer, M. W. Coughlin, V. Kumar, M. Almualla, S. Anand, M. Bulla, T. Dietrich, F. Foucart, and N. Guessoum, Data-driven expectations for electromagnetic counterpart searches based on ligo/virgo public alerts, The Astrophysical Journal 924
2022
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2022
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2023
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2023
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A. M. Farah, B. Edelman, M. Zevin, M. Fishbach, J. M. Ezquiaga, B. Farr, and D. E. Holz, Things that might go bump in the night: Assessing structure in the binary black hole mass spectrum, The Astrophysical Journal 955
2023
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