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A Monte Carlo approach to the estimation & analysis of uncertainty in clinical laboratory measurement processes

机译:用于临床实验室测量过程中不确定度估计和分析的蒙特卡洛方法

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Clinical laboratory testing is a vital component of many stages of the medical decision making process, and therefore information about the quality of the measurement process is critical to the medical decision-making process. A statement of uncertainty of the result of a laboratory test provides this information. To obtain this information, the clinical laboratory measurement process is conceptualized as a self-contained system, the concept of process phases is introduced, and a broadly applicable algorithm describing the modeling and estimation of uncertainty of such processes is developed. The article discusses how performance specifications for individual components can be used to characterize their uncertainty, and uses Monte Carlo simulation to integrate these individual component uncertainties into a net system uncertainty. The proposed approach is illustrated by developing a mathematical model of the serum cholesterol assay analysis procedure. The uses of the model are to: 1) simulate, evaluate and optimize quality control policies without resorting to conducting controlled experiments, 2) obtain performance targets for the measurement process by using uncertainty estimates from the simulation, 3) estimate the contribution of each source of uncertainty to the net system uncertainty, and 4) study the effects of varying the parameters of the system on the net system uncertainty are illustrated with examples.
机译:临床实验室测试是医学决策过程许多阶段的重要组成部分,因此有关测量过程质量的信息对于医学决策过程至关重要。实验室测试结果不确定性的陈述提供了此信息。为了获得此信息,将临床实验室测量过程概念化为一个独立的系统,引入了过程阶段的概念,并开发了一种可广泛应用的算法,用于描述此类过程的不确定性建模和估计。本文讨论了如何将单个组件的性能规格用于表征其不确定性,并使用蒙特卡洛模拟将这些单个组件的不确定性集成到净系统不确定性中。通过开发血清胆固醇测定分析程序的数学模型来说明所提出的方法。该模型的用途是:1)在不求助于受控实验的情况下模拟,评估和优化质量控制策略; 2)通过使用来自模拟的不确定性估计来获得测量过程的性能目标; 3)估计每个来源的贡献不确定性对净系统不确定性的影响; 4)举例说明研究系统参数变化对净系统不确定性的影响。

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