Efficient Estimators of Finite Population Mean Based on Extreme Values in Simple Random Sampling

Author:

Iftikhar Anum1,Shi Hongbo1,Hussain Saddam2ORCID,Abbas Mohsin3,Ullah Kalim4

Affiliation:

1. School of Statistics, Shanxi University of Finance and Economics, Taiyuan, China

2. Department of Mathematics and Statistics, Institute of Southern Punjab, Multan, Pakistan

3. Department of Physiotherapy, KAIMS International Institute, Multan, Pakistan

4. Foundation University Medical College, Foundation University Islamabad, DHA-I, Islamabad 44000, Pakistan

Abstract

The use of extreme values of the auxiliary variable is sometimes more beneficial to get the high efficiency of the estimators, and the study variable can have a correlation with the rank of the decently correlated auxiliary variable. As a result, it can be regarded as additional data for the study variable that can be used to improve the estimators’ efficiency. When the knowledge of the minimum and maximum values, as well as the rankings of the auxiliary variable, is known, various better estimators for calculating the finite population mean of the research variable based on extreme values under simple random sampling are proposed in this paper. The suggested estimators’ bias and mean squared error expressions are derived using first-order approximation. The recommended estimators have been compared mathematically to the current estimators. The suggested estimators are more exact in terms of relative efficiency than the other estimators addressed here, as shown by simulation and real datasets used to demonstrate the estimation of a limited population mean based on extreme values.

Publisher

Hindawi Limited

Subject

General Engineering,General Mathematics

Reference20 articles.

1. A general class of estimators of a finite population mean using multi-auxiliary information under two stage sampling scheme;N. Garg;Journal of Reliability and Statistical Studies,2009

2. A general family of estimators for estimating population mean using known value of some population parameter (s);M. Khoshnevisan;Far East Journal of Theoretical Statistics,2007

3. Some improved estimators of finite population quantile using auxiliary information in sample surveys

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