Abdullah Y. Al-Hossain
Jazan University
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Publication
Featured researches published by Abdullah Y. Al-Hossain.
Journal of Applied Mathematics | 2014
Abdullah Y. Al-Hossain; Mursala Khan
To obtain the best estimates of the unknown population parameters have been the key theme of the statisticians. In the present paper we have suggested some estimators which estimate the population parameters efficiently. In short we propose a ratio, product, and regression estimators using two auxiliary variables, when there are some maximum and minimum values of the study and auxiliary variables, respectively. The properties of the proposed strategies in terms of mean square errors (variances) are derived up to first order of approximation. Also the performance of the proposed estimators have shown theoretically and these theoretical conditions are verified numerically by taking four real data sets under which the proposed class of estimators performed better than the other previous works.
SpringerPlus | 2016
Mursala Khan; Abdullah Y. Al-Hossain
Abstract In this manuscript, we have proposed a difference-type estimator for population mean under two-phase sampling scheme using two auxiliary variables. The properties and the mean square error of the proposed estimator are derived up to first order of approximation; we have also found some efficiency comparison conditions for the proposed estimator in comparison with the other existing estimators under which the proposed estimator performed better than the other relevant existing estimators. We show that the proposed estimator is more efficient than other available estimators under the two phase sampling scheme for this one example; however, further study is needed to establish the superiority of the proposed estimator for other populations.
Hacettepe Journal of Mathematics and Statistics | 2014
Saif Ullah; Abdullah Y. Al-Hossain; Neelam Bashir; Mursala Khan
This paper presents a class of ratio-type estimators for the evaluation of finite population mean under maximum and minimum values by using knowledge of the auxiliary variable. The properties of the proposed estimators in terms of biases and mean square errors are derived up to first order of approximation. Also, the performance of the proposed class of estimators is shown theoretically and these theoretical conditions are, then, verified numerically by taking three natural populations under which the proposed class of estimators performed better than other competing estimators. 2000 AMS Classification: 62D05.
Meccanica | 2012
Abo-el-nour N. Abd-alla; Fatimah A. Al-sheikh; Abdullah Y. Al-Hossain
Materials Science and Engineering B-advanced Functional Solid-state Materials | 2009
Abo-el-nour N. Abd-alla; Fatimah A. Al-sheikh; Abdullah Y. Al-Hossain
WSEAS Transactions on Systems and Control archive | 2011
Yousry Atia; Mohamed Zahran; Abdullah Y. Al-Hossain
Journal of Computational and Theoretical Nanoscience | 2014
Abo-el-nour N. Abd-alla; Abdullah Y. Al-Hossain; Hanan Elhaes; Medhat Ibrahim
Statistical Methodology | 2011
Ahmed A. Soliman; Abdullah Y. Al-Hossain; Mashail M. Al-Harbi
ACMOS'10 Proceedings of the 12th WSEAS international conference on Automatic control, modelling & simulation | 2010
Yousry Atia; Mohamed Zahran; Abdullah Y. Al-Hossain
Journal of Applied Mathematics and Computing | 2016
Abdullah Y. Al-Hossain