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New Confidence Intervals for Relative Risk of Two Correlated Proportions

Author

Listed:
  • Natalie DelRocco

    (University of Florida)

  • Yipeng Wang

    (University of Florida)

  • Dongyuan Wu

    (University of Florida)

  • Yuting Yang

    (University of Florida)

  • Guogen Shan

    (University of Florida
    University of Florida)

Abstract

Biomedical studies, such as clinical trials, often require the comparison of measurements from two correlated tests in which each unit of observation is associated with a binary outcome of interest via relative risk. The associated confidence interval is crucial because it provides an appreciation of the spectrum of possible values, allowing for a more robust interpretation of relative risk. Of the available confidence interval methods for relative risk, the asymptotic score interval is the most widely recommended for practical use. We propose a modified score interval for relative risk and we also extend an existing nonparametric U-statistic-based confidence interval to relative risk. In addition, we theoretically prove that the original asymptotic score interval is equivalent to the constrained maximum likelihood-based interval proposed by Nam and Blackwelder. Two clinically relevant oncology trials are used to demonstrate the real-world performance of our methods. The finite sample properties of the new approaches, the current standard of practice, and other alternatives are studied via extensive simulation studies. We show that, as the strength of correlation increases, when the sample size is not too large the new score-based intervals outperform the existing intervals in terms of coverage probability. Moreover, our results indicate that the new nonparametric interval provides the coverage that most consistently meets or exceeds the nominal coverage probability.

Suggested Citation

  • Natalie DelRocco & Yipeng Wang & Dongyuan Wu & Yuting Yang & Guogen Shan, 2023. "New Confidence Intervals for Relative Risk of Two Correlated Proportions," Statistics in Biosciences, Springer;International Chinese Statistical Association, vol. 15(1), pages 1-30, April.
  • Handle: RePEc:spr:stabio:v:15:y:2023:i:1:d:10.1007_s12561-022-09345-7
    DOI: 10.1007/s12561-022-09345-7
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    References listed on IDEAS

    as
    1. Guogen Shan & Shawn Gerstenberger, 2017. "Fisher’s exact approach for post hoc analysis of a chi-squared test," PLOS ONE, Public Library of Science, vol. 12(12), pages 1-12, December.
    2. repec:bla:biomet:v:71:y:2015:i:4:p:985-995 is not listed on IDEAS
    3. Guogen Shan & Hua Zhang & Jim Barbour, 2021. "Bootstrap confidence intervals for correlation between continuous repeated measures," Statistical Methods & Applications, Springer;Società Italiana di Statistica, vol. 30(4), pages 1175-1195, October.
    4. Guogen Shan, 2016. "Exact confidence intervals for randomized response strategies," Journal of Applied Statistics, Taylor & Francis Journals, vol. 43(7), pages 1279-1290, July.
    Full references (including those not matched with items on IDEAS)

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    Cited by:

    1. Dongyuan Wu & Guogen Shan, 2024. "Score confidence interval with continuity correction for ratio of two independent proportions," METRON, Springer;Sapienza Università di Roma, vol. 82(2), pages 183-199, August.

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