Robust adjusted Wald confidence intervals for a proportion based on ranked-set sampling
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Wald confidence intervals for a binomial proportion are known to perform poorly. Adjusted Wald intervals achieve better performance by adding in <i>c</i> successes and <i>c</i> failures (for an appropriate positive constant <i>c</i>) before computing the usual Wald interval. We study the performance of adjusted Wald intervals for a proportion in the context of ranked-set sampling, finding that such intervals outperform the existing intervals in the literature. In the process, we develop new methods for evaluating the performance of confidence intervals for a proportion in the ranked-set sampling context. We describe possible extensions and provide advice on the choice of <i>c</i>.
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Taylor & Francis创建时间:
2025-05-16



