Prediction of future failures in the log-logistic distribution based on hybrid censored data
Author | Abou Ghaida, Wassim R. |
Author | Baklizi, Ayman |
Available date | 2022-03-10T05:31:34Z |
Publication Date | 2022-01-01 |
Publication Name | International Journal of Systems Assurance Engineering and Management |
Identifier | http://dx.doi.org/10.1007/s13198-021-01510-3 |
Citation | Abou Ghaida, W.R., Baklizi, A. Prediction of future failures in the log-logistic distribution based on hybrid censored data. Int J Syst Assur Eng Manag (2022). https://doi.org/10.1007/s13198-021-01510-3 |
ISSN | 09756809 |
Abstract | We consider the prediction of future observations from the log-logistic distribution. The data is assumed hybrid right censored with possible left censoring. Different point predictors were derived. Specifically, we obtained the best unbiased, the conditional median, and the maximum likelihood predictors. Prediction intervals were derived using suitable pivotal quantities and intervals based on the highest density. We conducted a simulation study to compare the point and interval predictors. It is found that the point predictor BUP and the prediction interval HDI have the best overall performance. An illustrative example based on real data is given. |
Sponsor | Open Access funding provided by the Qatar National Library. |
Language | en |
Publisher | Springer |
Subject | Hybrid censoring Log-logistic distribution Point prediction Prediction intervals |
Type | Article |
ESSN | 0976-4348 |
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Mathematics, Statistics & Physics [740 items ]