Classification Rules for Two Exponential Populations with a Common Location Using Censored Samples

The problem of classification into two exponential populations with a common location parameter under the type-II censoring scheme is considered. Estimators improving upon the MLEs and the UMVUEs are used to construct classification rules for classifying an observation as well as a group of observat...

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Veröffentlicht in:Statistica (Bologna) 2021-01, Vol.81 (3), p.279-301
Hauptverfasser: Kumar, Pushkal, Tripathy, Manas Ranjan
Format: Artikel
Sprache:eng
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Zusammenfassung:The problem of classification into two exponential populations with a common location parameter under the type-II censoring scheme is considered. Estimators improving upon the MLEs and the UMVUEs are used to construct classification rules for classifying an observation as well as a group of observations. Further, a rule-based on the generalized likelihood ratio test, has also been proposed. More importantly, a detailed and in-depth simulation study has been carried out in order to compare the probability of correct classification as well as expected probability of correct classification numerically. Finally, a real life example is presented in order to illustrate the applicability of the proposed classification rules, under type-II censoring scheme.
ISSN:0390-590X
1973-2201
DOI:10.6092/issn.1973-2201/11507