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Effect of Bias on the Pearson Chi-squared Test for Two Population Homogeneity Test
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  • Effect of Bias on the Pearson Chi-squared Test for Two Population Homogeneity Test
  • Effect of Bias on the Pearson Chi-squared Test for Two Population Homogeneity Test
저자명
Heo. Sunyeong
간행물명
Journal of the Chosun Natural Science
권/호정보
2012년|5권 4호|pp.241-245 (5 pages)
발행정보
조선대학교 기초과학연구원
파일정보
정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
서지반출

기타언어초록

Categorical data collected based on complex sample design is not proper for the standard Pearson multinomial-based chi-squared test because the observations are not independent and identically distributed. This study investigates effects of bias of point estimator of population proportion and its variance estimator to the standard Pearson chi-squared test statistics when the sample is collected based on complex sampling scheme. This study examines the effect under two population homogeneity test. The standard Pearson test statistic can be partitioned into two parts; the first part is the weighted sum of ${chi}^2_1$ with eigenvalues of design matrix as their weights, and the additional second part which is added due to the biases of the point estimator and its variance estimator. Our empirical analysis shows that even though the bias of point estimator is small, Pearson test statistic is very much inflated due to underestimate the variance of point estimator. In the connection of design-based variance estimator and its design matrix, the bigger the average of eigenvalues of design matrix is, the larger relative size of which the first component part to Pearson test statistic is taking.