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Computing exact bundle compliance control charts via probability generating functions

机译:通过概率生成函数计算精确的束遵从性控制图

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Compliance to evidenced-base practices, individually and in 'bundles', remains an important focus of healthcare quality improvement for many clinical conditions. The exact probability distribution of composite bundle compliance measures used to develop corresponding control charts and other statistical tests is based on a fairly large convolution whose direct calculation can be computationally prohibitive. Various series expansions and other approximation approaches have been proposed, each with computational and accuracy tradeoffs, especially in the tails. This same probability distribution also arises in other important healthcare applications, such as for risk-adjusted outcomes and bed demand prediction, with the same computational difficulties. As an alternative, we use probability generating functions to rapidly obtain exact results and illustrate the improved accuracy and detection over other methods. Numerical testing across a wide range of applications demonstrates the computational efficiency and accuracy of this approach.
机译:个别地和“捆绑式”地遵守循证实践仍然是许多临床状况下医疗质量改善的重要重点。用于开发相应控制图和其他统计测试的复合材料束合规性度量的确切概率分布是基于相当大的卷积,而其直接计算可能会在计算上受到阻碍。已经提出了各种级数展开和其他近似方法,每种方法都有计算和精度的权衡,尤其是在尾部。同样的概率分布也出现在其他重要的医疗保健应用中,例如风险调整后的结果和床位需求预测,具有相同的计算难度。作为替代方案,我们使用概率生成函数快速获得准确的结果,并说明与其他方法相比提高的准确性和检测能力。在广泛应用中的数值测试证明了这种方法的计算效率和准确性。

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