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October 2, 2024Symmetry14 citationsOpen Access

Observational Constraints and Cosmographic Analysis of f(T,TG) Gravity and Cosmology

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HBHarshna BalharaJSJ. K. SinghSShaily

Key Points

  • The effective dark-energy sector shows a quintessence-like behavior as the universe evolves, nearing a cosmological constant.
  • Best-fit values from observational data indicate a transition to acceleration in the redshift range of 0.52≤ztr≤0.89 based on current models.
  • Analysis employs Markov chain Monte Carlo sampling for parameter estimation alongside observational data from supernova Type Ia and Hubble functions, enhancing model accuracy and reliability in predictions on cosmic behavior and structure formation. This approach yields iso-likelihood contours confirming the stability of the f(T,TG) gravity model under scrutiny, especially regarding its dark-energy attributes and dynamics.

Abstract

We perform observational confrontation and cosmographic analysis of f(T,TG) gravity and cosmology. This higher-order torsional gravity is based on both the torsion scalar, as well as on the teleparallel equivalent of the Gauss–Bonnet combination, and gives rise to an effective dark-energy sector which depends on the extra torsion contributions. We employ observational data from the Hubble function and supernova Type Ia Pantheon datasets, applying a Markov chain Monte Carlo sampling technique, and we provide the iso-likelihood contours, as well as the best-fit values for the parameters of the power-law model, an ansatz which is expected to be a good approximation of most realistic deviations from general relativity. Additionally, we reconstruct the effective dark-energy equation-of-state parameter, which exhibits a quintessence-like behavior, while in the future the Universe enters into the phantom regime, before it tends asymptotically to the cosmological constant value. Furthermore, we perform a detailed cosmographic analysis, examining the deceleration, jerk, snap, and lerk parameters, showing that the transition to acceleration occurs in the redshift range 0.52≤ztr≤0.89, as well as the preference of the scenario for quintessence-like behavior. Finally, we apply the Om diagnostic analysis to cross-verify the behavior of the obtained model.

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Cite This Study

Balhara et al. (2024) studied this question.

synapsesocial.com/papers/68e55ef0e2b3180350efc405https://doi.org/10.3390/sym16101299
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