Journal of Multidisciplinary Science: MIKAILALSYS
Vol 3 No 1 (2025): Journal of Multidisciplinary Science: MIKAILALSYS

Bayesian Approach of Modified Half - Cauchy Chen Distribution

Sah Telee, Lal Babu (Unknown)
Chaudhary, Arun Kumar (Unknown)
Karki, Murari (Unknown)



Article Info

Publish Date
11 Mar 2025

Abstract

In this article, we explore a Bayesian framework for parameter estimation and model evaluation using a specific probability model, referred to as the MHCC Distribution. The model defines the likelihood of observed data through parameters α, β, and θ. We employ both Gibbs sampling and Stan, a state-of-the-art platform for Bayesian statistical modeling, to estimate the parameters of the model. A key focus is on validating the model through posterior predictive checks. Our analysis also includes a detailed evaluation of model diagnostics, including trace plots, autocorrelation plots, and Gelman-Rubin convergence diagnostics. The goal of this work is to provide a comprehensive approach to model fitting, diagnostics, and validation in Bayesian inference.

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Journal Info

Abbrev

mikailalsys

Publisher

Subject

Agriculture, Biological Sciences & Forestry Chemical Engineering, Chemistry & Bioengineering Environmental Science Physics Social Sciences Other

Description

Journal of Multidisciplinary Science : MIKAILALSYS [2987-3924 (Print) and 2987-2286 (Online)] is a double blind peer reviewed and open access journal to disseminating all information contributing to the understanding and development of Multidisciplinary Science. Its scope is international in that it ...