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An Empirical Likelihood Estimate of the Finite Population Correlation Coefficient
Authors:Sarjinder Singh  Stephen A Sedory  Jong-min Kim
Institution:1. Department of Mathematics , Texas A&2. M University-Kingsville , Kingsville , TX , USA;3. Statistics Discipline, Division of Science and Mathematics , University of Minnesota-Morris , Morris , MN , USA
Abstract:In this article, the problem of the estimation of finite population correlation coefficient is considered using the empirical likelihood method. A new estimator that makes the use of both the known mean and variance of an auxiliary variable is proposed. The percent relative bias and percent relative efficiency of the proposed new estimator with respect to the usual estimator of the correlation coefficient is investigated through extensive simulation study for values of the correlation coefficient from ?0.90 to +0.90. The proposed estimator is found to perform better than the simple correlation coefficient from both the bias and relative efficiency points of views, for the population, considered in the investigation. At the end, the proposed estimator has been extended to complex survey designs. Supplementary materials for this article are available online.
Keywords:Empirical likelihood estimates  Estimation of finite population correlation coefficient  Solution to nonlinear equations
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