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Inference on proportional hazard rate model parameter under Type-I progressively hybrid censoring scheme
Authors:Leila Golparvar
Institution:School of Mathematics, Statistics and Computer Science, University of Tehran, Tehran, Iran
Abstract:ABSTRACT

In this paper, under Type-I progressive hybrid censoring sample, we obtain maximum likelihood estimator of unknown parameter when the parent distribution belongs to proportional hazard rate family. We derive the conditional probability density function of the maximum likelihood estimator using moment-generating function technique. The exact confidence interval is obtained and compared by conducting a Monte Carlo simulation study for burr Type XII distribution. Finally, we obtain the Bayes and posterior regret gamma minimax estimates of the parameter under a precautionary loss function with precautionary index k = 2 and compare their behavior via a Monte Carlo simulation study.
Keywords:Bayes estimator  Confidence interval  Maximum likelihood estimator  Posterior regret gamma minimax estimator  Progressive hybrid censoring scheme  
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