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Journal article

Exact likelihood inference for Laplace distribution based on generalized hybrid censored samples

Abstract

In this paper, we first develop exact likelihood inference for Laplace distribution based on a generalized Type-I hybrid censored sample (Type-I HCS). We derive explicit expressions for the maximum likelihood estimators (MLEs) of the location and scale parameters. We then derive the joint moment generating function (MGF) of the MLEs, and use it to obtain the exact distributions and moments of the MLEs. Using an analogous approach, we extend the results to a generalized Type-II hybrid censored sample (Type-II HCS) next. Finally, we present a numerical example to illustrate all the results established here.

Authors

Zhu X; Balakrishnan N

Journal

Communications in Statistics - Simulation and Computation, Vol. 53, No. 1, pp. 259–272

Publisher

Taylor & Francis

Publication Date

January 2, 2024

DOI

10.1080/03610918.2021.2018458

ISSN

0361-0918

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