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Research Article | Open Access

A discrete Ramos-Louzada distribution for asymmetric and over-dispersed data with leptokurtic-shaped: Properties and various estimation techniques with inference

Ahmed Sedky Eldeeb1,2 ( )Muhammad Ahsan-ul-Haq3,4 Mohamed S. Eliwa5 
Department of Business Administration, College of Business, King Khalid University, Saudi Arabia
Department of Statistics, Mathematics and Insurance, Alexandria University, Egypt
College of Statistical & Actuarial Sciences, University of the Punjab, Lahore, Pakistan
Quality Enhancement Cell, National College of Arts, Lahore, Pakistan
Department of Mathematics, Faculty of Science, Mansoura University, Mansoura 35516, Egypt
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Abstract

In this paper, a flexible probability mass function is proposed for modeling count data, especially, asymmetric, and over-dispersed observations. Some of its distributional properties are investigated. It is found that all its statistical properties can be expressed in explicit forms which makes the proposed model useful in time series and regression analysis. Different estimation approaches including maximum likelihood, moments, least squares, Andersonӳ-Darling, Cramer von-Mises, and maximum product of spacing estimator, are derived to get the best estimator for the real data. The estimation performance of these estimation techniques is assessed via a comprehensive simulation study. The flexibility of the new discrete distribution is assessed using four distinctive real data sets ԣoronavirus-flood peaks-forest fire-Leukemia? Finally, the new probabilistic model can serve as an alternative distribution to other competitive distributions available in the literature for modeling count data.

CLC number: 60E05, 62E10, 62F10, 62N05, 62P10

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AIMS Mathematics
Pages 1726-1741

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Cite this article:
Eldeeb AS, Ahsan-ul-Haq M, Eliwa MS. A discrete Ramos-Louzada distribution for asymmetric and over-dispersed data with leptokurtic-shaped: Properties and various estimation techniques with inference. AIMS Mathematics, 2022, 7(2): 1726-1741. https://doi.org/10.3934/math.2022099

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Received: 20 June 2021
Accepted: 26 October 2021
Published: 15 February 2022
©2021 the Author(s), licensee AIMS Press.

This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0)