Abstract

In this article, we examine the universe’s dynamical behaviour in the context of the [Formula: see text] theory of gravity, where [Formula: see text] and [Formula: see text] represent the Ricci scalar and Gauss-Bonnet invariant, respectively. The modified field equations are solved for the selection of [Formula: see text] function as [Formula: see text] and of the deceleration parameter as a linear function of Hubble parameter, i.e., [Formula: see text]. We predict the best fit values of model parameters that would be in agreement with the recent observational datasets. We use the CC, Pantheon and BAO datasets as well as the Bayesian analysis and likelihood function together with the MCMC method. Further, we examine the physical behavior of cosmographic parameters corresponding to the constrained values of the model parameters as well as the energy density and pressure. The model obtained exhibits a transition from decelerating to accelerating expansion phases of the universe. We show that our [Formula: see text] model can explain the late accelerating expansion of the universe without calling any dark energy term in the energy-momentum tensor.

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