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Uncertainty and patient heterogeneity in medical decision models.

机译:医疗决策模型中的不确定性和患者异质性。

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摘要

Parameter uncertainty, patient heterogeneity, and stochastic uncertainty of outcomes are increasingly important concepts in medical decision models. The purpose of this study is to demonstrate the various methods to analyze uncertainty and patient heterogeneity in a decision model. The authors distinguish various purposes of medical decision modeling, serving various stakeholders. Differences and analogies between the analyses are pointed out, as well as practical issues. The analyses are demonstrated with an example comparing imaging tests for patients with chest pain. For complicated analyses step-by-step algorithms are provided. The focus is on Monte Carlo simulation and value of information analysis. Increasing model complexity is a major challenge for probabilistic sensitivity analysis and value of information analysis. The authors discuss nested analyses that are required in patient-level models, and in nonlinear models for analyses of partial value of information analysis.
机译:参数不确定性,患者异质性和结果的随机不确定性在医疗决策模型中变得越来越重要。这项研究的目的是演示在决策模型中分析不确定性和患者异质性的各种方法。作者区分了医疗决策模型的各种目的,为各种利益相关者服务。指出了分析之间的差异和类比,以及实际问题。以比较胸痛患者影像学检查为例说明分析。对于复杂的分析,提供了分步算法。重点是蒙特卡洛模拟和信息分析的价值。模型复杂性的提高是概率敏感性分析和信息分析价值的主要挑战。作者讨论了患者级模型和非线性模型中用于信息分析部分价值分析所需的嵌套分析。

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