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Modeling and Analysis of the Uncertainty of Enzyme Measurement Processes in Clinical Laboratories

机译:临床实验室中酶测量过程不确定性的建模和分析

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Clinical laboratory measurement processes inform every stage of the medical decision-making process, and measurement of the activity levels of enzymes such as alkaline phosphatase, alanine aminotransferase, etc. provide vital information regarding various body functions such as the liver and gastrointestinal tract. The uncertainty associated with the result of these enzyme assays describes the quality of the measurement process, and therefore methods to improve the quality of the measurement process require minimizing the measurement uncertainty of the enzyme assay. In this paper, we develop a physics-based mathematical model of the alkaline phosphatase (ALP) measurement process, with uncertainty introduced into its components to represent the sources of variation in the measurement process. The Monte Carlo method is then utilized to describe the long-term behavior of the model and estimate the uncertainty associated with the result of the measurement. An uncertainty profile used to generate estimates of uncertainty at different patient sample activity levels is constructed. We then utilize the model to quantify the contributions of the individual sources of uncertainty to the net measurement uncertainty, and also quantify the effect of uncertainty within the calibration process on the net measurement uncertainty.
机译:临床实验室测量过程会通知医学决策过程的每个阶段,而对酶活性水平(如碱性磷酸酶,丙氨酸氨基转移酶等)的测量可提供有关各种身体功能(如肝脏和胃肠道)的重要信息。与这些酶分析的结果相关的不确定性描述了测量过程的质量,因此,提高测量过程的质量的方法需要使酶分析的测量不确定性最小化。在本文中,我们开发了碱性磷酸酶(ALP)测量过程的基于物理学的数学模型,并将不确定性引入其成分以表示测量过程中变化的来源。然后,使用蒙特卡洛方法描述模型的长期行为,并估计与测量结果相关的不确定性。构建用于在不同患者样本活动水平下生成不确定性估计的不确定性配置文件。然后,我们利用该模型来量化不确定性的各个来源对净测量不确定性的贡献,并且还量化校准过程中不确定性对净测量不确定性的影响。

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