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New tools for evaluating LQAS survey designs

机译:评估LQAS调查设计的新工具

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Lot Quality Assurance Sampling (LQAS) surveys have become increasingly popular in global health care applications. Incorporating Bayesian ideas into LQAS survey design, such as using reasonable prior beliefs about the distribution of an indicator, can improve the selection of design parameters and decision rules. In this paper, a joint frequentist and Bayesian framework is proposed for evaluating LQAS classification accuracy and informing survey design parameters. Simple software tools are provided for calculating the positive and negative predictive value of a design with respect to an underlying coverage distribution and the selected design parameters. These tools are illustrated using a data example from two consecutive LQAS surveys measuring Oral Rehydration Solution (ORS) preparation. Using the survey tools, the dependence of classification accuracy on benchmark selection and the width of the ‘grey region’ are clarified in the context of ORS preparation across seven supervision areas. Following the completion of an LQAS survey, estimation of the distribution of coverage across areas facilitates quantifying classification accuracy and can help guide intervention decisions.
机译:批次质量保证抽样(LQAS)调查在全球医疗保健应用中越来越受欢迎。将贝叶斯思想纳入LQAS调查设计中,例如使用合理的关于指标分布的先验信念,可以改善设计参数和决策规则的选择。本文提出了一种联合贝叶斯和贝叶斯框架,用于评估LQAS分类的准确性并告知调查设计参数。提供了简单的软件工具,用于计算有关基础覆盖范围分布和所选设计参数的设计的正面和负面预测值。使用两个连续的LQAS调查(测量口服补液溶液(ORS)制备)中的数据示例说明了这些工具。使用调查工具,可以在七个监管区域内进行ORS的准备工作中,明确分类精度对基准选择的依赖性和“灰色区域”的宽度。在完成LQAS调查后,估算覆盖区域的分布有助于量化分类准确性,并有助于指导干预决策。

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