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Analysis of COVID-19 and Cancer Data using New Half-Logistic Generated Family of Distributions

Authors :
Sadaf Khan
Muhammad H. Tahir
Farrukh Jamal
Source :
Operations Research and Decisions, Vol vol. 33, Iss no. 4, Pp 71-95 (2023)
Publication Year :
2023
Publisher :
Wrocław University of Science and Technology, 2023.

Abstract

We focus on a specific sub-model of the proposed family that we call the new half logistic- Fréchet. This sub-model stems from a new generalisation of the half-logistic distribution which we call the new half-logistic-G. The novelty of proposing this new family is that it does not include any additional parameters and instead relies on the baseline parameter. Standard statistical formulas are used to show the forms of the density and failure rate functions, ordinary and incomplete moments with generating functions, and random variate generation. The maximum likelihood estimation procedure is used to estimate the set of parameters. We conduct a simulation analysis to ensure that our calculations are converging with lower mean square error and biases. We use three real-life data sets to equate our model to well-established existing models. The proposed model outperforms the well- established four parameters beta Fréchet and exponentiated generalized Fréchet for some reallife results, with three parameters such as half-logistic Fréchet, exponentiated Fréchet, Zografos-Balakrishnan gamma Fréchet,Topp-Leonne Fréchet, and Marshall-Olkin Fréchet and two-parameter classical Fréchet distribution. (original abstract)

Details

Language :
English
ISSN :
20818858 and 23916060
Volume :
. 33
Issue :
no. 4
Database :
Directory of Open Access Journals
Journal :
Operations Research and Decisions
Publication Type :
Academic Journal
Accession number :
edsdoj.8a1056cff98a406eb738fa7cac95ea00
Document Type :
article