题名

Confidence Intervals for the Risk Ratio Using Double Sampling with Misclassified Binomial Data

DOI

10.6339/JDS.2011.09(4).944

作者

Dewi Rahardja;Dean M. Young

关键词

Binomial data ; double sampling ; misclassification ; relative risk ; risk ratio

期刊名称

Journal of Data Science

卷期/出版年月

9卷4期(2011 / 10 / 01)

页次

529 - 548

内容语文

英文

英文摘要

We derive three likelihood-based confidence intervals for the risk ratio of two proportion parameters using a double sampling scheme for misclassified binomial data. The risk ratio is also known as the relative risk. We obtain closed-form maximum likelihood estimators of the model parameters by maximizing the full-likelihood function. Moreover, we develop three confidence intervals: a naive Wald interval, a modified Wald interval, and a Fieller-type interval. We apply the three confidence intervals to cervical cancer data. Finally, we perform two Monte Carlo simulation studies to assess and compare the coverage probabilities and average lengths of the three interval estimators. Unlike the other two interval estimators, the modified Wald interval always produces close-to-nominal confidence intervals for the various simulation scenarios examined here. Hence, the modified Wald confidence interval is preferred in practice.

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