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Research Article | Open Access

A new least squares method for estimation and prediction based on the cumulative Hazard function

Amany E. Aly1Magdy E. El-Adll1( )Haroon M. Barakat2Ramy Abdelhamid Aldallal3
Department of Mathematics, Faculty of Science, Helwan University, Ain Helwan, Cairo, Egypt
Department of Mathematics, Faculty of Science, Zagazig University, Zagazig, Egypt
Department of Accounting, College of Business Administration in Hawtat Bani Tamim, Prince Sattam Bin Abdulaziz University, Saudi Arabia
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Abstract

In this paper, the cumulative hazard function is used to solve estimation and prediction problems for generalized ordered statistics (defined in a general setup) based on any continuous distribution. The suggested method makes use of Rényi representation. The method can be used with type Ⅱ right-censored data as well as complete data. Extensive simulation experiments are implemented to assess the efficiency of the proposed procedures. Some comparisons with the maximum likelihood (ML) and ordinary weighted least squares (WLS) methods are performed. The comparisons are based on both the root mean squared error (RMSE) and Pitman's measure of closeness (PMC). Finally, two real data sets are considered to investigate the applicability of the presented methods.

CLC number: 60G70, 62E20, 62F10, 62G30, 62G32, 62N05

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AIMS Mathematics
Pages 21968-21992

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Cite this article:
Aly AE, El-Adll ME, Barakat HM, et al. A new least squares method for estimation and prediction based on the cumulative Hazard function. AIMS Mathematics, 2023, 8(9): 21968-21992. https://doi.org/10.3934/math.20231120

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Received: 17 March 2023
Revised: 24 June 2023
Accepted: 04 July 2023
Published: 15 September 2023
©2023 the Author(s), licensee AIMS Press.

This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0)