Testing the $R_{\rm h}=ct$ Universe Jointly with the Redshift-dependent Expansion rate and Angular-diameter and Luminosity Distances
Hao-Yi Wan, Shu-Lei Cao, Fulvio Melia, Tong-Jie Zhang

TL;DR
This study compares three flat cosmological models using multiple observational data sets, finding strong statistical support for the $R_{h}=ct$ universe over $ ext{Lambda}$CDM and $w$CDM models.
Contribution
It provides a joint analysis of diverse cosmological data sets to evaluate and compare the $R_{h}=ct$ universe with standard models, favoring the former based on Bayesian criteria.
Findings
$R_{h}=ct$ best-fit $H_0$ matches previous measurements (~63 km/s/Mpc).
$ ext{Lambda}$CDM's $H_0$ aligns with Planck results.
Bayesian analysis favors $R_{h}=ct$ with ~97 ext% likelihood.
Abstract
We use three different data sets, specifically measurements from cosmic chronometers, the HII-galaxy Hubble diagram, and reconstructed quasar-core angular-size measurements, to perform a joint analysis of three flat cosmological models: the Universe, CDM, and CDM. For , the 1 best-fit value of the Hubble constant is , which matches previous measurements ( ) based on best fits to individual data sets. For CDM, our inferred value of the Hubble constant, , is more consistent with the optimization than the locally measured value using variables, and the matter density similarly coincides with its …
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