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Estimation of the exponentiated half-logistic distribution based on multiply Type-I hybrid censoring

Authors :
Young Eun Jeon
Suk-Bok Kang
Source :
Communications for Statistical Applications and Methods. 27:47-64
Publication Year :
2020
Publisher :
The Korean Statistical Society, 2020.

Abstract

In this paper, we derive some estimators of the scale parameter of the exponentiated half-logistic distribution based on the multiply Type-I hybrid censoring scheme. We assume that the shape parameter λ is known. We obtain the maximum likelihood estimator of the scale parameter σ. The scale parameter is estimated by approximating the given likelihood function using two different Taylor series expansions since the likelihood equation is not explicitly solved. We also obtain Bayes estimators using prior distribution. To obtain the Bayes estimators, we use the squared error loss function and general entropy loss function (shape parameter q = -0.5, 1.0). We also derive interval estimation such as the asymptotic confidence interval, the credible interval, and the highest posterior density interval. Finally, we compare the proposed estimators in the sense of the mean squared error through Monte Carlo simulation. The average length of 95% intervals and the corresponding coverage probability are also obtained.

Details

ISSN :
23834757
Volume :
27
Database :
OpenAIRE
Journal :
Communications for Statistical Applications and Methods
Accession number :
edsair.doi...........1b6e572379157997964613793a79276c
Full Text :
https://doi.org/10.29220/csam.2020.27.1.047