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A simulation-based approach to modeling the uncertainty of two-substrate clinical enzyme measurement processes

机译:一种基于模拟的仿真方法来建模双基底临床酶测量过程的不确定性

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Results of clinical laboratory tests inform every stage of the medical decision-making process, and measurement of enzymes such as alanine aminotransferase provide vital information regarding the function of organ systems such as the liver and gastrointestinal tract. Estimates of measurement uncertainty quantify the quality of the measurement process, and therefore, methods to improve the quality of the measurement process require minimizing assay uncertainty. To accomplish this, we develop a physics-based mathematical model of the alanine aminotransferase assay, with uncertainty introduced into its parameters that represent variation in the measurement process, and then use the Monte Carlo method to quantify the uncertainty associated with the model of the measurement process. Furthermore, the simulation model is used to estimate the contribution of individual sources of uncertainty as well as that of uncertainty in the calibration process to the net measurement uncertainty.
机译:临床实验室测试的结果通知医疗决策过程的每个阶段,以及丙氨酸氨基转移酶等酶的测量提供了有关肝脏和胃肠道等器官系统的功能的重要信息。 测量不确定性的估计量化测量过程的质量,因此,提高测量过程质量的方法需要最小化测定不确定性。 为了实现这一点,我们开发了丙氨酸氨基转移酶测定的基于物理学的数学模型,不确定性引入其参数中的表示测量过程中的变化,然后使用蒙特卡罗方法量化与测量模型相关的不确定性 过程。 此外,仿真模型用于估计各个不确定性源以及校准过程中的不确定性的贡献到净测量不确定性。

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