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the Supermassive Black Hole. The Astrophysical Journal 87(1): L1.
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References
Bennett, C., et al. (2003). First year wilkinson microwave anisotropy probe (MAP) observations.
Astrophysical Journal Supplement, 148(1), 97–117.
Bergmann, P. (1942). Introduction to the theory of relativity. Prentice Hall, 1942.
Birrer, S. et al. (2020). TDCOSMO IV: Hierarchical time-delay cosmography, joint inference of the
hubble constant and galaxy density profiles. Arxiv 2007.02941 v1, 6 Jul 2020.
Bjorken, J. D. & Drell, S. D. (1964), Relativistic quantum mechanics. McGraw Hill.
Bjorken, J. D. & Drell, S. D. (1965). Relativistic quantum fields. McGraw Hill.
Boggess, N. W., et al. (1992). The COBE mission: Its design and performance two years after the
launch. Astrophysical Journal, 397(2), 420.
Bondi, H., & Gold, T. (1948). The steady state theory of the expanding universe. MNRAS, 108, 252.
Burgay, M. (2012). The double pulsar system in its 8th anniversary. In: Science with parkes at 50
years young, 31 Oct.–4 Nov., (ATNF/CSIRO, Australia, 2012). [ADS].
Carroll, B. W. & Ostlie, D. A. (2017). An introduction to modern astrophysics (2nd ed.). Cambridge
University Press.
Chalinor, A. (2012). CMB anisotropy science: A review, Proc. IAU symposium No. 288.
Chandrasekhar, S. (1939). An introduction to the study of stellar structure, (Dover 1939).
Chen, G. C-F. et al. (2019). A sharp view of HOLiCOW: H o from three time-delay gravitational
lens systems with adaptive optics imaging, arxiv.org/abs/1907.02533.
CMB Polarization. (2019). CMB polarization, cfa.harvard.edu.
Cosmicweb.uchicago.edu. (2019). From quantum foam to galaxies: formation of the large-scale
structure of the universe.
Courant, R. & Hilbert, D. (1937). Methods of mathematical physics, Vol. I (Intersience publishers
1955).
Crane, L. (2019). Something is seriously wrong with our understanding of the cosmos, New Scientist,
July 11, 2019.
Dar, A. (2006). The new astronomy. In G. Fraser (Ed.), The new physics for the twentieth-first
century. Cambridge University Press.
Dominguez, A. et al. (2019). A new measurement of the Hubble constant and matter content of the
universe using extragalactic background light gamma-ray attenuation. arxiv.org/abs/1903.12097.
Drees, M. (2018). Dark matter theory. arXiv:1811.06406v1, 2018.
Dvorkin, C. et al. (2019). Neutrino mass from cosmology: Probing physics beyond the standard
model. arxiv.org/abs/1903.03689.
Eddington, A. S. (1923). The mathematical theory of relativity. Cambridge: Cambridge University
Press.
Eikenberry, S. et. al. (2019), Astro 2020 Science White Paper, A Direct Measure of Cosmic
Acceleration. arxiv.org/abs/1904.00217.
Einstein, A. & Lorentz, H. A. &. Weyl H., & H. Minkowski, H. (1923), The principle of relativity
(Dover, U.S. 1923). This contains various reprinted articles. In Does the Inertia of a Body Depend
Upon its Energy Content? there is a wonderfully simple discussion of the famous equation
E = mc 2 .
Einstein, A. (1934). Essays in science. U.S.: Philosophical Library.
Eötvös, R. V., Pekár, V., & Fekete, E. (1922). Beitrage zum Gesetze der Proportionalität von Trägheit
und Gravität. Ann. Phys. (Leipzig), 68, 11–66.
Event horizon telescope, EHT. (2019). First M87 event horizon telescope results. I. The Shadow of
the Supermassive Black Hole. The Astrophysical Journal 87(1): L1.
Everitt, F. et al. (2015). Classical and quantum gravity Vol. 32, 22 (IOP Bristol, 2015). The final
report on the Gravity Probe B experiment to test gyroscope precession occupies the entire volume.
Fischbach, M. et al. (2018). A standard siren measurement of the Hubble constant from GW170817
without the electromagnetic counterpart. arxiv.org/abs/1807.05667.
Fixsen, D. J. et al. (1993). The cosmic microwave background spectrum from the full COBE/FIRAS
data set. arXiv:astro-ph/9605054.
Fraknoi, A. (2016). Astronomy (The Textbook) researchgate.net.
