An improved exponential ratio estimator for post-stratified sampling designs

Authors

  • Rizwan Yousuf
    Department of Mathematics, Chandigarh University, Mohali, Punjab 140413, India
  • Khalid Ul Islam Rather
    Multidisciplinary Research Unit, Sher-I-Kashmir Institute of Medical Sciences, Srinagar, India
  • Olumide S. Adesina
    Johannesburg Business School, University of Johannesburg, South Africa
  • Roohul Andrabi
    Department of Management Studies, Dr. MGR Education and Research Institute, Chennai, Tamil Nadu, India
  • Emmanuel F. Ologunleko
    Department of Statistics, Olabisi Onabanjo University, Ago-Iwoye 120107, Ogun State, Nigeria
  • Adedayo F. Adedotun
    Department of Statistics, Olabisi Onabanjo University, Ago-Iwoye 120107, Ogun State, Nigeria

Keywords:

Ratio exponential estimator, Post-stratification, Mean squared error, Efficiency

Abstract

This study proposes a new ratio-type exponential estimator for estimating the finite population mean under post-stratification. A simple random sample is first selected and later divided into post-strata using an auxiliary variable to improve the precision of estimation. The proposed estimator incorporates auxiliary information obtained through post-stratification to reduce the mean squared error (MSE) compared with the usual unbiased estimator and some existing ratio-type estimators. Expressions for the bias and MSE of the estimator are derived to the first order of approximation, and the conditions under which the estimator performs more efficiently are established. To examine its practical usefulness, a real population dataset was employed and analysed. The performance of the proposed estimator was assessed using percentage relative efficiency (PRE) measures and compared with those of existing estimators available in the literature. The empirical results indicate that the proposed estimator produces smaller MSE values and higher efficiency values than the competing estimators. The findings therefore show that the estimator provides a more reliable and efficient approach for estimating the population mean, particularly in surveys involving stratified population data and the availability of relevant auxiliary information.

Dimensions

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[4] R. Tailor & A. Mehta, ``A ratio and ratio exponential estimator for finite population mean in case of post-stratification'', Journal of Statistics Applications & Probability 8 (2019) 241. https://doi.org/10.18576/jsap/080308.

[5] K. U. I. Rather, M. I. Jeelani, M. Y. Shah, S. E. H. Rizvi & M. Sharma, ``A new ratio type estimator for computation of population mean under post-stratification'', Journal of Applied Mathematics and Statistical Informatics 18 (2022) 29. https://doi.org/10.2478/jamsi-2022-0003.

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[7] W. G. Cochran, ``The estimation of yields of cereal experiments by sampling for the ratio of grain to total produce'', Journal of Agricultural Science 30 (1940) 262. https://doi.org/10.1017/S0021859600048012.

[8] M. N. Murthy, Sampling Theory and Methods, Statistical Publishing Society, Calcutta, India, 1967.

EQU16

Published

2026-07-23

How to Cite

An improved exponential ratio estimator for post-stratified sampling designs. (2026). African Scientific Reports, 5(2), 479. https://doi.org/10.46481/asr.2026.5.2.479

Issue

Section

MATHEMATICAL SCIENCES SECTION

How to Cite

An improved exponential ratio estimator for post-stratified sampling designs. (2026). African Scientific Reports, 5(2), 479. https://doi.org/10.46481/asr.2026.5.2.479

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