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Erschienen in:

10.05.2024

A new poisson-exponential-gamma distribution for modelling count data with applications

verfasst von: Waheed Babatunde Yahya, Muhammad Adamu Umar

Erschienen in: Quality & Quantity | Ausgabe 6/2024

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Abstract

In this paper, a new member of the Poisson family of distributions called the Poisson-Exponential-Gamma (PEG) distribution for modelling count data is proposed by compounding the Poisson with Exponential-Gamma distribution. The first four moments about the origin and the mean of the new PEG distribution were obtained. The expressions for its coefficient of variation, skewness, kurtosis, and index of dispersion were equally derived. The parameters of the PEG distribution were estimated using the Maximum Likelihood Method. Its relative performance based on the Goodness-of-Fit (GoF) criteria was compared with those provided by seven of the existing related distributions (Poisson, Negative-Binomial, Poisson-Exponential, Poisson-Lindley, Poisson-Shanker, Poisson-Shukla, and Poisson Entropy-Based Weighted Exponential distributions) in the literature on three different published real-life count data sets. The GoF assessment of all these distributions was performed based on the values of their loglikelihoods (\({-}2{\text{logLik}}\)), Akaike Information Criteria, Akaike Information Criteria Corrected, and Bayesian Information Criteria. The results showed that the new PEG distribution was relatively more efficient for modelling (over-dispersed) count data than any of the seven existing distributions considered. The new PEG distribution is therefore recommended as a credible alternative for modelling count data whenever relative gain in the model’s efficiency is desired.

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Metadaten
Titel
A new poisson-exponential-gamma distribution for modelling count data with applications
verfasst von
Waheed Babatunde Yahya
Muhammad Adamu Umar
Publikationsdatum
10.05.2024
Verlag
Springer Netherlands
Erschienen in
Quality & Quantity / Ausgabe 6/2024
Print ISSN: 0033-5177
Elektronische ISSN: 1573-7845
DOI
https://doi.org/10.1007/s11135-024-01894-x