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首页> 外文期刊>Computational and mathematical methods in medicine >Decision Model for Allocation of Intensive Care Unit Beds for Suspected COVID-19 Patients under Scarce Resources
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Decision Model for Allocation of Intensive Care Unit Beds for Suspected COVID-19 Patients under Scarce Resources

机译:稀缺资源下疑似Covid-19患者重症监护床分配决策模型

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摘要

This paper puts forward a decision model for allocation of intensive care unit (ICU) beds under scarce resources in healthcare systems during the COVID-19 pandemic. The model is built upon a portfolio selection approach under the concepts of the Utility Theory. A binary integer optimization model is developed in order to find the best allocation for ICU beds, considering candidate patients with suspected/confirmed COVID-19. Experts’ subjective knowledge and prior probabilities are considered to estimate the input data for the proposed model, considering the particular aspects of the decision problem. Since the chances of survival of patients in several scenarios may not be precisely defined due to the inherent subjectivity of such kinds of information, the proposed model works based on imprecise information provided by users. A Monte-Carlo simulation is performed to build a recommendation, and a robustness index is computed for each alternative according to its performance as evidenced by the results of the simulation.
机译:本文提出了Covid-19大流行期间医疗保健系统稀缺资源下的重症监护室(ICU)床分配决策模型。该模型是根据实用工具理论概念的投资组合选择方法。开发了二进制整数优化模型,以便考虑涉嫌/确认的Covid-19的候选患者找到ICU床的最佳分配。专家的主观知识和现有概率被认为是考虑到决策问题的特定方面的拟议模型的输入数据。由于患者在若干方案中存活的机会可能不是由于这些信息的固有主体性而精确定义,因此该模型基于用户提供的不精确信息。执行Monte-Carlo模拟以构建推荐,并且根据其性能计算稳健性索引,其性能如模拟结果所证明的。

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