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We study dark energy through the viewpoints of parametric and nonparametric analyses of late-time cosmological data.
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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 (2) (2018) 101 · 2018
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J. Martin, Everything You Always Wanted To Know About The Cosmological Constant Problem (But Were Afraid To Ask), Comptes Rendus Physique 13 (2012) 566–665 · 2012
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T. Clifton, P. G. Ferreira, A. Padilla, C. Skordis, Modified Gravity and Cosmology, Phys. Rept. 513 (2012) 1–189 · 2012
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A. De Felice, S. Tsujikawa, Conditions for the cosmological viability of the most general scalar-tensor theories and their applications to extended Galileon dark energy models, JCAP 02 (2012) 007 · 2012
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G.-P. Nicosia, J. Levi Said, V. Gakis, Generalised Proca theories in teleparallel gravity, Eur. Phys. J. Plus 136 (2) (2021) 191 · 2012
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M. Seikel, C. Clarkson, M. Smith, Reconstruction of dark energy and expansion dynamics using Gaussian processes, JCAP 2012 (6) (2012) 036 · 2012
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M. Moresco, et al., Improved constraints on the expansion rate of the Universe up to z ~ · 2012
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C. Blake, S. Brough, M. Colless, C. Contreras, W. Couch, S. Croom, D. Croton, T. M. Davis, M. J. Drinkwater, K. Forster, D. Gilbank, M. Gladders, K. Glazebrook, B. Jelliffe, R. J. Jurek, I. h. Li, B. Madore, D. C. Martin, K. Pimbblet, G. B. Poole, M. Pracy, R. Sharp, E. Wisnioski, D. Woods, T. K. Wyder, H. K. C. Yee, The WiggleZ Dark Energy Survey: joint measurements of the expansion and growth history at z < < 1, Mon. Not. Roy. Astron. Soc. 425 (1) (2012) 405–414 · 2012
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A. Shafieloo, A. G. Kim, E. V. Linder, Gaussian Process Cosmography, Phys. Rev. D 85 (2012) 123530 · 2012
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J. F. Jesus, R. F. L. Holanda, S. H. Pereira, Model independent constraints on transition redshift, JCAP 05 (2018) 073 · 2018
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A. Gómez-Valent, L. Amendola, H 0 H_{0} from cosmic chronometers and Type Ia supernovae, with Gaussian Processes and the novel Weighted Polynomial Regression method, JCAP 04 (2018) 051 · 2018
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A. G. Riess, et al., Type Ia Supernova Distances at Redshift > > 1.5 from the Hubble Space Telescope Multi-cycle Treasury Programs: The Early Expansion Rate, Astrophys. J. 853 (2) (2018) 126 · 2018
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R. Kase, S. Tsujikawa, Dark energy in Horndeski theories after GW170817: A review, Int. J. Mod. Phys. D 28 (05) (2019) 1942005 · 2019
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D. Benisty, Quantifying the S 8 S_{8} tension with the Redshift Space Distortion data set, Phys. Dark Univ. 31 (2021) 100766 · 2020
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M. Reyes, C. Escamilla-Rivera, Improving data-driven model-independent reconstructions and updated constraints on dark energy models from Horndeski cosmology, JCAP 07 (2021) 048 · 2021
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R. C. Bernardo, J. Levi Said, A data-driven Reconstruction of Horndeski gravity via the Gaussian processes, JCAP 09 (2021) 014 · 2021
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R. C. Bernardo, J. Levi Said, Towards a model-independent reconstruction approach for late-time Hubble data, JCAP 08 (2021) 027 · 2021
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C. Escamilla-Rivera, J. Levi Said, J. Mifsud, Performance of non-parametric reconstruction techniques in the late-time universe, JCAP 10 (2021) 016 · 2021
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