A data-driven reconstruction of Horndeski gravity via the Gaussian processes
Reginald Christian BernardoNational Institute of Physics, University of the Philippines Diliman, Quezon City 1101, PhilippinesJackson Levi SaidDepartment of Physics, University of Malta, MSD 2080, Malta
2021en
ABI
Annotatsiya
We reconstruct the Hubble function from cosmic chronometers, supernovae, and baryon acoustic oscillations compiled data sets via the Gaussian process (GP) method and use it to draw out Horndeski theories that are fully anchored on expansion history data. In particular, we consider three well-established formalisms of Horndeski gravity which single out a potential through the expansion data, namely: quintessence potential, designer Horndeski, and tailoring Horndeski. We discuss each method in detail and complement it with the GP reconstructed Hubble function to obtain predictive constraints on the potentials and the dark energy equation of state.
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