Calibration Estimation of Cumulative Distribution Function Using Robust Measures

Author:

Abbasi Hareem1,Hanif Muhammad1,Shahzad Usman1ORCID,Emam Walid2ORCID,Tashkandy Yusra2ORCID,Iftikhar Soofia3,Shahzadi Shabnam4

Affiliation:

1. Department of Mathematics and Statistics, PMAS-Arid Agriculture University, Rawalpindi 46300, Pakistan

2. Department of Statistics and Operations Research, Faculty of Science, King Saud University, P.O. Box 2455, Riyadh 11451, Saudi Arabia

3. Department of Statistics, Shaheed Benazir Bhutto Women University, Peshawar 25120, Pakistan

4. Department of Mathematics and Big Data, Anhui University of Science and Technology, Huainan 232001, China

Abstract

Outliers are observations that are significantly different from the other observations in a dataset. These types of observations are asymmetric in nature due to a lack of symmetry. The estimation of the cumulative distribution function (CDF) is an important statistical measure commonly discussed for symmetric datasets. However, the estimation of the CDF in the case of the asymmetric nature of the dataset is not a much-explored topic. In this article, we use calibration methodology with auxiliary information for modifying the traditional stratification weight, and hence, we obtain efficient estimates of the CDF using robust measures, i.e., mid-range and tri-mean, under the different distance functions. A simulation study is carried out to see the performance of proposed and existing estimators using asymmetric real-life datasets.

Funder

King Saud University, Riyadh, Saudi Arabia

Publisher

MDPI AG

Subject

Physics and Astronomy (miscellaneous),General Mathematics,Chemistry (miscellaneous),Computer Science (miscellaneous)

Reference21 articles.

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4. Estimation of distribution function and quantiles using the model-calibrated pseudo empirical likelihood method;Chen;Stat. Sin.,2002

5. A family of estimators of finite-population distribution function using auxiliary information;Singh;Acta Appl. Math.,2008

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