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The Exponential T-X Family of Distributions: Properties and an Application to Insurance Data

Zubair Ahmad, Eisa Mahmoudi, Morad Alizadeh, Rasool Roozegar, Ahmed Z. Afify

2021Journal of Mathematics39 citationsDOIOpen Access PDF

Abstract

Heavy-tailed distributions play a prominent role in actuarial and financial sciences. In this paper, we introduce a family of distributions that we refer to as exponential T-X (ETX) family. Based on the proposed approach, a new extension of the Weibull model is introduced. The proposed model is very flexible in modeling heavy-tailed data. Some mathematical properties are derived, and maximum likelihood estimates of the model parameters are obtained. A Monte Carlo simulation study is conducted to evaluate the performance of the maximum likelihood estimators. Actuarial measures such as value at risk and tail value at risk are also calculated. A simulation study based on these actuarial measures is provided. Finally, an application to a heavy-tailed automobile insurance claim data set is presented. The proposed model is compared with some well-known competing distributions.

Topics & Concepts

Weibull distributionMathematicsEstimatorExponential familyExtension (predicate logic)Heavy-tailed distributionExponential functionStatisticsMaximum likelihoodEconometricsRisk modelExponential distributionApplied mathematicsActuarial scienceProbability distributionComputer scienceEconomicsMathematical analysisProgramming languageStatistical Distribution Estimation and ApplicationsProbability and Risk ModelsFinancial Risk and Volatility Modeling
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