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Nova Publishers.
Godel, K. (1949). An example of a new type of cosmological solutions of Einstein’s field equations
of gravitation. Reviews of Modern Physics, 21, 447, July 1 1949.
Goldstein, H. (1980). Classical mechanics (2nd ed.). Addison Wesley.
Griffiths, D. (1987). Introduction to elementary particles. New York: Wiley.
Hawking, S. & Ellis, G. F. R. (1973). The large scale structure of space-time. Cambridge University
Press.
Hawking, S. W. (1974). Black hole explosions? Nature, 248(5443), 30–31.
Hetherington, N. S. (1980). Sirius B and the gravitational redshift—an historical review. Quarterly
Journal Royal Astronomical Society, 21, 246–252.
Holz, D. E., Hughes, S. A. & Schutz, B. F. (2018). Measuring cosmic distances with standard sirens.
Physics Today 35, December 2018.
Hoyle, F. (1948). A new model for the expanding universe. MNRAS, 108, 372.
Hubble, E. (1929). A relation between distance and radial velocity among extra-galactic nebulae.
Proceedings of National Academic Sciences, 15(3), 168–173.
Hulse, R. A., & Taylor, J. H. (1975). Discovery of a pulsar in a binary system. Astrophysics Journal,
195, L51–L53.
Jackson, J. D. (1999). Classical electrodynamics, (3rd ed.). Wiley 1999.
Kasen, D. et al (2017). Origin of the heavy elements in binary neutron star mergers from a
gravitational wave event. arxiv.org/abs/1710.05463.
Kenyon, I. R. (1990). General relativity. Oxford University Press.
Kerr, R. P. (1963). Gravitational field of a spinning mass as an example of algebraically special
metrics. Physical Review Letters, 11(5), 237–238.
Kinney, W. H. (2002). Cosmology, inflation, and the physics of nothing. arxiv:astro-ph/0301448.
Kirshner, R. P. (2004). Hubble’s diagram and cosmic expansion. Proceedings of National Academic
Sciences, 101(1), 8–13.
Kofman, L. (1996). The origin of matter in the universe: Reheating after inflation. arxiv:astroph/9605155.
Kruskal, M. (1960). Maximal extension of Schwarzschild metric. Physical Review, 119, 1743.
Knox, L. and Millea, M. (2019). The hubble hunter’s guide. arXiv:1908.03663v2.
Lawrie, I. D. (1990). A unified grand tour of theoretical physics. Adam Hilger.
Le Verrier, U. (1859). Lettre de M. Le Verrier à M. Faye sur la théorie de Mercure et sur le mouvement
du périhélie de cette planète. Comptes rendus hebdomadaires des séances de l’Académie des
sciences (Paris), 49(1859), 379–383.
Liddle, A. (2003). An introduction to modern cosmology (2nd edn.). Wiley.
Liddle, A. R. (1999). An introduction to cosmological inflation. arxiv:astro-ph/9901124.
LIGO collaboration website, ligo.caltech.edu.
LIGO Collaboration. (2017). A gravitational-wave standard candle measurement of the Hubble
constant. Nature, 551, 85.
Linde, A. D. (2007). Inflationary cosmology. arxiv.org/abs/1705.0164.
Lommen, A. N. (2017). Pulsar timing for gravitational wave detection. Nature Astronomy, 1, 809–
811.
Mannheim, P. D. (2011). Making the case for conformal gravity. arXiv:1101.2186, 2011.
Martins, C. J. A. P., Marinelli, M., Calabrese, M.P., Ramos L. P. (2016). Real-time cosmography
with redshift derivatives. arxiv.org/abs/1606.07261.
Milgrom, M. (2014). MOND theory. arXiv:1404.7661.
Misner, C., Thorne, K., & Wheeler, J. (1973). Gravitation. U.S.: W. H. Freeman.
