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Constrained Optimization Methods in Health Services Research-An Introduction: Report 1 of the ISPOR Optimization Methods Emerging Good Practices Task Force.

机译:卫生服务研究中的约束优化方法 - 简介:IspOR优化方法新兴良好实践工作组的报告1。

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摘要

Providing health services with the greatest possible value to patients and society given the constraints imposed by patient characteristics, health care system characteristics, budgets, and so forth relies heavily on the design of structures and processes. Such problems are complex and require a rigorous and systematic approach to identify the best solution. Constrained optimization is a set of methods designed to identify efficiently and systematically the best solution (the optimal solution) to a problem characterized by a number of potential solutions in the presence of identified constraints. This report identifies 1) key concepts and the main steps in building an optimization model; 2) the types of problems for which optimal solutions can be determined in real-world health applications; and 3) the appropriate optimization methods for these problems. We first present a simple graphical model based on the treatment of "regular" and "severe" patients, which maximizes the overall health benefit subject to time and budget constraints. We then relate it back to how optimization is relevant in health services research for addressing present day challenges. We also explain how these mathematical optimization methods relate to simulation methods, to standard health economic analysis techniques, and to the emergent fields of analytics and machine learning.
机译:鉴于患者特征,医疗保健系统特征,预算等带来的限制,向患者和社会提供具有最大可能价值的卫生服务在很大程度上取决于结构和流程的设计。这些问题很复杂,需要严格而系统的方法来确定最佳解决方案。约束优化是一组方法,旨在在存在已确定的约束的情况下,高效,系统地识别以许多潜在解决方案为特征的问题的最佳解决方案(最优解决方案)。该报告确定了1)建立优化模型的关键概念和主要步骤; 2)在现实的健康应用中可以确定最佳解决方案的问题类型; 3)针对这些问题的合适的优化方法。我们首先介绍一种基于“常规”和“严重”患者治疗的简单图形模型,该模型在受到时间和预算限制的情况下,可最大程度地提高整体健康效益。然后,我们将其与优化服务在解决当今挑战方面的相关性联系起来。我们还将解释这些数学优化方法如何与模拟方法,标准健康经济分析技术以及新兴的分析和机器学习领域相关联。

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