English

Comparative Study of $f(T)$ Gravity Models with Observational Constraints from \textit{OHD} and \textit{Pantheon+ datasets}

General Relativity and Quantum Cosmology 2026-05-07 v1

Abstract

The late-time acceleration of the universe remains one of the most significant open problems in modern cosmology. Modified gravity frameworks such as f(T)f(T) gravity provide a geometric alternative to dark energy by attributing cosmic acceleration to torsional effects. In this study, we present a comparative analysis of three different forms of f(T)f(T) models: (i) a simple power-law form f(T)=η(T)nf(T) = \eta (-T)^{n}, (ii) the exponential form f(T)=βT0(1epT/T0)f(T) = \beta T_{0}\left(1-e^{-p \sqrt{T/T_{0}}}\right) and (iii) a logarithmic form f(T)=γTln ⁣(TT0)f(T) = \gamma T \ln\!\left(\frac{T}{T_{0}}\right). Using parameterization of the deceleration parameter q(z)q(z) and the corresponding H(z)H(z) expression, we constrain the model parameters with the recent Hubble parameter and BAO data through a Markov Chain Monte Carlo (MCMC) approach. The physical behavior of the effective energy density, equation of state parameter, squared sound speed, cosmological Om(z)Om(z) diagnostics, and energy conditions (NEC, DEC, SEC) were investigated for all three models. Our comparative analysis shows that all models asymptotically approach the Λ\LambdaCDM behavior at late times, while they differ in stability properties and energy condition behaviors. In particular, the violation of the strong energy condition (SEC) has emerged as a common feature consistent with current accelerated expansion. This study highlights how different f(T)f(T) functional forms can yield distinct cosmological dynamics while maintaining consistency with observational data.

Keywords

Cite

@article{arxiv.2605.04113,
  title  = {Comparative Study of $f(T)$ Gravity Models with Observational Constraints from \textit{OHD} and \textit{Pantheon+ datasets}},
  author = {Anirudh Pradhan and S. A. Salve and V. B. Raut and S. H. Shekh},
  journal= {arXiv preprint arXiv:2605.04113},
  year   = {2026}
}

Comments

19 pages, 8 figures, 2 tables