Bibliography
- F. Viète, Variorum de Rebus Mathematicis Responsorum, Liber VIII (Paris, 1593).
- V. M. Abazov et al. (D0 Collaboration), “Evidence for an anomalous like-sign dimuon charge asymmetry,” Phys. Rev. D 82, 032001 (2010).
- J. Solà Peracaula, A. Gómez-Valent, and J. de Cruz Pérez, “Signs of dynamical dark energy in current observations,” Phys. Dark Univ. 25, 100311 (2019).
- E. Di Valentino et al., “Cosmology Intertwined II: The H₀ tension,” Astropart. Phys. 131, 102605 (2021).
- A. Banerjee, E. Ó Colgáin, M. M. Sheikh-Jabbari, and T. Yang, “Hubble tension and hints of evolving dark energy,” Phys. Rev. D 109, 023522 (2024).
- D. Benisty, S. Pan, D. Staicova, E. Di Valentino, and R. C. Nunes, “Late-time constraints on interacting dark energy: Analysis independent of H₀, rd, and MB,” Astron. Astrophys. 688, A156 (2024), arXiv:2403.00056.
- T. M. C. Abbott et al. (DES Collaboration), “Dark Energy Survey Year 3 results: Cosmological constraints from weak lensing and clustering,” Phys. Rev. D 105, 023520 (2022).
- M. Asgari et al. (KiDS Collaboration), “KiDS-1000 Cosmology: Cosmic shear constraints and comparison between two-point statistics,” Astron. Astrophys. 645, A104 (2021).
- A. G. Adame et al. (DESI Collaboration), “DESI 2024 VI: Cosmological Constraints from the Measurements of Baryon Acoustic Oscillations,” JCAP 02, 021 (2025), arXiv:2404.03002.
- N. Aghanim et al. (Planck Collaboration), “Planck 2018 results. VI. Cosmological parameters,” Astron. Astrophys. 641, A6 (2020), arXiv:1807.06209.
- D. Scolnic et al., “The Pantheon+ Analysis: The full data set and light-curve release,” Astrophys. J. 938, 113 (2022), arXiv:2112.03863.
- D. Brout et al., “The Pantheon+ Analysis: Cosmological constraints,” Astrophys. J. 938, 110 (2022), arXiv:2202.04077.
- B. Wang, E. Abdalla, F. Atrio-Barandela, and D. Pavón, “Dark matter and dark energy interactions: Theoretical challenges, cosmological implications and observational signatures,” Rep. Prog. Phys. 79, 096901 (2016), arXiv:1603.08299.
- E. Di Valentino, A. Melchiorri, and J. Silk, “Can interacting dark energy solve the tension?,” Phys. Rev. D 96, 043503 (2017), arXiv:1706.00634.
- C. M. Will, “The confrontation between general relativity and experiment,” Living Rev. Relativ. 17, 4 (2014).
- T. Clifton, P. G. Ferreira, A. Padilla, and C. Skordis, “Modified gravity and cosmology,” Phys. Rep. 513, 1–189 (2012).
- E. W. Kolb and M. S. Turner, The Early Universe (Addison–Wesley, Redwood City, 1990).
- A. D. Linde, Particle Physics and Inflationary Cosmology (Harwood Academic, Chur, 1990).
- J. Alvey, N. Sabti, M. Escudero, and M. Fairbairn, “Testing the cosmological variability of fundamental constants with Big Bang Nucleosynthesis,” Eur. Phys. J. C 79, 490 (2019).
- Y.-H. Li, F.-Q. Wu, and X. Chen, “Constraints on the Brans–Dicke gravity theory with Planck and BAO data,” Phys. Rev. D 88, 084053 (2013).
- S. M. Merkowitz, “Tests of gravity using lunar laser ranging,” Living Rev. Relativ. 13, 7 (2010).
- T. W. Murphy Jr., “Lunar laser ranging: The millimeter challenge,” Rep. Prog. Phys. 76, 076901 (2013).
- R. Penrose, Cycles of Time: An Extraordinary New View of the Universe (Bodley Head, London, 2010).
- P. J. Steinhardt and N. Turok, “A cyclic model of the universe,” Science 296, 1436–1439 (2002).
- P. Amaro-Seoane et al. (LISA Consortium), “Laser Interferometer Space Antenna,” arXiv:1702.00786 (2017).
- S. Kawamura et al., “The Japanese space gravitational wave antenna: DECIGO,” Class. Quantum Grav. 28, 094011 (2011).
- G. Agazie et al. (NANOGrav Collaboration), “The NANOGrav 15 yr Data Set: Evidence for a gravitational-wave background,” Astrophys. J. Lett. 951, L8 (2023).