Fetching the paper…
Reading the bibliography…
Modified gravity (MG) theories predict, in general, that the ratio of gravitational wave (GW) to electromagnetic (EM) luminosity distances, $\Xi$, differs from its general relativity (GR) value of unity at cosmological scales, thus providing another perturbative probe to MG.
O. Lahav and A. R. Liddle, Cosmological parameters, arXiv:1912.03687
1912
Earlier work this paper cites.
B. F. Schutz, Determining the Hubble constant from gravitational wave observations, Nature (London) 323
1986
Earlier work this paper cites.
J. Hwang, Perturbations of the Robertson-Walker space: Multicomponent sources and generalized gravity, Astrophys. J. 375
1991
Earlier work this paper cites.
C. Cutler and E. E. Flanagan, Gravitational waves from merging compact binaries: How accurately can one extract the binary’s parameters from the inspiral waveform?, Phys. Rev. D 49
1994
Earlier work this paper cites.
J. Hwang and H. Noh, Gauge-ready formulation of the cosmological kinetic theory in generalized gravity theories, Phys. Rev. D 65
2001
Earlier work this paper cites.
R. Schneider, V. Ferrari, S. Matarrese, and S. F. Portegies Zwart, Low-frequency gravitational waves from cosmological compact binaries, Mon. Not. R. Astron. Soc. 324
2001
Earlier work this paper cites.
W. L. Freedman et al. , Final results from the Hubble space telescope key project to measure the Hubble constant, Astrophys. J. 553
2001
Earlier work this paper cites.
M. Maggiore, Gravitational Waves: Volume 1 (Oxford University Press, New York, 2007)
2007
Earlier work this paper cites.
W. Hu and I. Sawicki, Models of f ( R ) f({R}) cosmic acceleration that evade solar system tests, Phys. Rev. D 76
2007
Earlier work this paper cites.
L. Amendola, R. Gannouji, D. Polarski, and S. Tsujikawa, Conditions for the cosmological viability of f ( R ) f({R}) dark energy models, Phys. Rev. D 75
2007
Earlier work this paper cites.
A. A. Starobinsky, Disappearing cosmological constant in f ( r ) f(r) gravity, JETP Lett. 86
2007
Earlier work this paper cites.
L. Pogosian and A. Silvestri, Pattern of growth in viable f ( R ) f({R}) cosmologies, Phys. Rev. D 77
2008
Earlier work this paper cites.
A. D. Felice and S. Tsujikawa, f ( R ) f({R}) theories, Living Rev. Relativity 13
2010
Earlier work this paper cites.
T. P. Soutiriou and V. Faraoni, f ( R ) f({R}) theories of gravity, Rev. Mod. Phys. 82
2010
Earlier work this paper cites.
B. S. Sathyaprakash, B. F. Schutz, and C. V. D. Broeck, Cosmography with the Einstein Telescope, Classical Quantum Gravity 27
2010
Earlier work this paper cites.
W. Zhao, C. Van Den Broeck, D. Baskaran, and T. G. F. Li, Determination of dark energy by the Einstein Telescope: Comparing with CMB, BAO, and SNIa observations, Phys. Rev. D 83
2011
Earlier work this paper cites.
C. Blake et al. , The WiggleZ Dark Energy Survey: mapping the distance–redshift relation with baryon acoustic oscillations, Mon. Not. R. Astron. Soc. 418
2011
Earlier work this paper cites.
F. Beutler, C. Blake, M. Colless, D. H. Jones, L. Staveley-Smith, L. Campbell, Q. Parker, W. Saunders, and F. Watson, The 6dF Galaxy Survey: baryon acoustic oscillations and the local Hubble constant, Mon. Not. R. Astron. Soc. 416
2011
Cited alongside, same era.
T. Clifton, P. G. Ferreira, A. Padilla, and C. Skordis, Modified gravity and cosmology, Phys. Rep. 513
2012
Cited alongside, same era.
N. Padmanabhan, X. Xu, D. J. Eisenstein, R. Scalzo, A. J. Cuesta, K. T. Mehta, and E. Kazin, A 2% distance to z = 0.35 z=0.35 by reconstructing baryon acoustic oscillations – I. Methods and application to the Sloan Digital Sky Survey, Mon. Not. R. Astron. Soc. 427
2012
Cited alongside, same era.
L. Anderson et al. , The clustering of galaxies in the SDSS-III Baryon Oscillation Spectroscopic Survey: Baryon acoustic oscillations in the Data Release 9 spectroscopic galaxy sample, Mon. Not.. R. Astron. Soc. 427
2012
Cited alongside, same era.
E. Belgacem, Y. Dirian, S. Foffa, and M. Maggiore, Modified gravitational-wave propagation and standard sirens, Phys. Rev. D 98
2018
Later among the works it cites.
L.-F. Wang, X.-N. Zhang, J.-F. Zhang, and X. Zhang, Impacts of gravitational-wave standard siren observation of the Einstein Telescope on weighing neutrinos in cosmology, Phys. Lett. B 782
2018
Later among the works it cites.
L. G. Jaime, M. Jaber, and C. Escamilla-Rivera, New parametrized equation of state for dark energy surveys, Phys. Rev. D 98
2018
Later among the works it cites.
D. M. Scolnic et al. , The complete light-curve sample of spectroscopically confirmed SNe Ia from Pan-STARRS1 and cosmological constraints from the combined Pantheon sample, Astrophys. J. 859
2018
Later among the works it cites.
M. Denissenya and E. V. Linder, Gravity's islands: Parametrizing Horndeski stability, J. Cosmol. Astropart. Phys. 11 (2018) 010
alphaXiv searches the wider corpus for related work and actual follow-ups.
alphaXiv is searching for related work…
M. O’ Dwyer, S. E. Jorás, and I. Waga, γ \gamma gravity: Steepness control, Phys. Rev. D 88
2013
Cited alongside, same era.
B. Jain, V. Vikram, and J. Sakstein, Astrophysical tests of modified gravity: Constraints from distance indicators in the nearby universe, Astrophys. J. 779
2013
Cited alongside, same era.
I. D. Saltas, I. Sawicki, L. Amendola, and M. Kunz, Anisotropic Stress as a Signature of Nonstandard Propagation of Gravitational Waves, Phys. Rev. Lett. 113
2014
Cited alongside, same era.
S. Tsujikawa, The effective field theory of inflation/dark energy and the Horndeski theory, Lect. Notes Phys. 892
2014
Cited alongside, same era.
L. Blanchet, Gravitational radiation from post-Newtonian sources and inspiralling compact binaries, Living Rev. Relativity 17
2014
Cited alongside, same era.
E. Bellini and I. Sawicki, Maximal freedom at minimum cost: Linear large-scale structure in general modifications of gravity, J. Cosmol. Astropart. Phys. 07 (2014) 050
2014
Cited alongside, same era.
B. P. Abbott et al. (LIGO Scientific and Virgo Collaborations), Observation of Gravitational Waves from a Binary Black Hole Merger, Phys. Rev. Lett. 116
2016
Cited alongside, same era.
M. V. dos Santos, R. Reis, and I. Waga, Constraining the cosmic deceleration-acceleration transition with type Ia supernova, BAO/CMB and H(z) data, J. Cosmol. Astropart. Phys. 02 (2016) 066
2016
Cited alongside, same era.
2018
Later among the works it cites.
P. G. Ferreira, Cosmological tests of gravity, Annu. Rev. Astron. Astrophys. 57
2019
Later among the works it cites.
L. Heisenberg, A systematic approach to generalisations of general relativity and their cosmological implications, Phys. Rep. 796
2019
Later among the works it cites.
M. Ishak, Testing general relativity in cosmology, Living Rev. Relativity 22
2019
Later among the works it cites.
X.-N. Zhang, L.-F. Wang, J.-F. Zhang, and X. Zhang, Improving cosmological parameter estimation with the future gravitational-wave standard siren observation from the Einstein Telescope, Phys. Rev. D 99
2019
Later among the works it cites.
R. D’ Agostino and R. C. Nunes, Probing observational bounds on scalar-tensor theories from standard sirens, Phys. Rev. D 100
2019
Later among the works it cites.
E. Belgacem et al. , Testing modified gravity at cosmological distances with LISA standard sirens, J. Cosmol. Astropart. Phys. 07 (2019) 024
2019
Later among the works it cites.
R. Arjona, W. Cardona, and S. Nesseris, Unraveling the effective fluid approach for f ( R ) f({R}) models in the subhorizon approximation, Phys. Rev. D 99
2019
Later among the works it cites.
L. Amendola, D. Bettoni, A. M. Pinho, and S. Casas, Measuring gravity at cosmological scales, Universe 6
2020
Later among the works it cites.
M. Maggiore et al. , Science case for the Einstein telescope, J. Cosmol. Astropart. Phys. 03 (2020) 050
2020
Later among the works it cites.
M. Arca Sedda, Dissecting the properties of neutron star-black hole mergers originating in dense star clusters, Commun. Phys. 3
2020
Later among the works it cites.
Planck Collaboration, Planck 2018 results—VI. Cosmological parameters, Astron. & Astrophys. 641
2020
Later among the works it cites.