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The effect of clustering on lot quality assurance sampling: a probabilistic model to calculate sample sizes for quality assessments

机译:聚类对批次质量保证抽样的影响:一种概率模型,用于计算样本量以进行质量评估

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Background Traditional Lot Quality Assurance Sampling (LQAS) designs assume observations are collected using simple random sampling. Alternatively, randomly sampling clusters of observations and then individuals within clusters reduces costs but decreases the precision of the classifications. In this paper, we develop a general framework for designing the cluster(C)-LQAS system and illustrate the method with the design of data quality assessments for the community health worker program in Rwanda.
机译:背景技术传统的批次质量保证抽样(LQAS)设计假定使用简单的随机抽样来收集观察数据。备选地,随机采样观察值的群集,然后对群集中的个体进行采样,可以降低成本,但会降低分类的精度。在本文中,我们开发了一个用于设计cluster(C)-LQAS系统的通用框架,并通过设计数据质量评估为卢旺达社区卫生工作者计划说明了该方法。

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