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Modeling Uncertainty due to Instrument Drift in Clinical Laboratories

机译:临床实验室仪器漂移导致的不确定性

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Clinical laboratory tests play a vital role in the medical decision making process, including diagnosis, prognostic assessment and drug dosage prescription. Drift or degradation in the performance of the analytic instrument over time can have a significant effect on the uncertainty of the clinical laboratory measurement test result. In this paper, we model the drift in the analytic instrumentation used to perform the laboratory tests, and estimate its effect on the uncertainty of the measurement result. This is accomplished developing a physics-based mathematical model of the serum albumin laboratory test that describes the measurement result as a function of various sources of uncertainty operating within the serum albumin measurement process. The Monte Carlo method is used to estimate the uncertainty associated with this model. Drift in the instrument is modeled as affecting both the mean (inaccuracy) and the standard deviation (imprecision) of each source of uncertainty. Further, recalibrating the instrument is postulated as a method to nullify the effect of instrument drift on inaccuracy of the measurement result, and the model is used to estimate the average time interval between successive calibrations such that the drift does not exceed clinically significant total error limits and prevents misdiagnosis.
机译:临床实验室测试在医学决策过程中发挥着至关重要的作用,包括诊断,预后评估和药物剂量处方。随着时间的推移,分析仪器性能的漂移或劣化可能对临床实验室测量试验结果的不确定性产生显着影响。在本文中,我们模拟了用于执行实验室测试的分析仪器中的漂移,并估计其对测量结果的不确定性的影响。这是实现了血清白蛋白实验室测试的基于物理学的数学模型,该测试描述了测量结果作为在血清白蛋白测量过程中运行的各种不确定性源的函数。 Monte Carlo方法用于估计与该模型相关的不确定性。仪器中的漂移被建模为影响每个不确定源的平均值(不准确)和标准偏差(不精确)。此外,将仪器的重新校准被假设为使仪器漂移对测量结果不准确的方法,并且该模型用于估计连续校准之间的平均时间间隔,使得漂移不会超过临床上显着的总误差限制并妨碍误诊。

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