A quadratic f(Q) gravity model with bulk viscosity is fitted to expansion data, but the reported Hubble-law formula contradicts the paper's own scale-factor solution.
Model-Independent Reconstruction of f(T) Gravity Using Genetic Algorithms
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abstract
In this paper, we use genetic algorithms, a specific machine learning technique, to achieve a model-independent reconstruction of $f(T)$ gravity. By using $H(z)$ data derived from cosmic chronometers and radial Baryon Acoustic Oscillation method, including the latest Dark Energy Spectroscopic Instrument (DESI) data, we reconstruct the Hubble rate which is the basis parameter for reconstructing $f(T)$ gravity without any assumptions. In this reconstruction process, we use the current value of the Hubble rate, $H_0$, derived by genetic algorithms. The reconstructed $f(T)$ function is consistent with the standard $\Lambda$CDM cosmology within the 1$\sigma$ confidence level across a broad temporal range. The mean $f(T)$ curve, adopting a quadratic form, prompts us to parametrize it using a second degree polynomial. This quadratic deviation from the $\Lambda$CDM scenario is mildly favored by the data.
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Quintessence dark energy model in non-linear $f(Q)$ theory with bulk-viscosity
A quadratic f(Q) gravity model with bulk viscosity is fitted to expansion data, but the reported Hubble-law formula contradicts the paper's own scale-factor solution.