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Optimal Screening for Hepatocellular Carcinoma: A Restless Bandit Model

机译:肝细胞癌的最佳筛选:不安定的强盗模型

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This paper seeks an efficient way to screen a population of patients at risk for hepatocellular carcinoma when (1) each patient's disease evolves stochastically and (2) there are limited screening resources shared by the population. Recent medical discoveries have shown that biological information can be learned at each screening to differentiate patients into varying levels of risk for cancer. We investigate how to exploit this knowledge to choose which patients to screen to maximize early-stage cancer detections while limiting resource usage. We model the problem as a family of restless bandits, with each patient's disease progression evolving as a partially observable Markov decision process. We derive an optimal policy for this problem and discuss managerial insights into what characterizes more effective screening. To provide numerical evidence, we use two independent data sets of over 800 patients, one to train the optimal policy, and the other to build a computer simulation to act as a test bed for said policy. We are able to show that our policy detects 22% more early-stage cancers than current practice, while using the same amount of resource expenditure. We provide insights into the structure underlying our policy and discuss the implications of our findings.
机译:当(1)每个患者的疾病随机发展和(2)人群共享的筛查资源有限时,本文寻求一种有效的方法来筛查有肝细胞癌风险的患者人群。最近的医学发现表明,可以在每次筛查中学习生物学信息,以区分患者不同程度的癌症风险。我们研究如何利用这些知识来选择要筛查的患者,以最大程度地早期检测癌症,同时限制资源使用。我们将这个问题建模为一个躁动不安的强盗家族,每个患者的疾病进展都是部分可观察到的马尔可夫决策过程。我们针对此问题制定了最佳政策,并讨论了管理人员对哪些特征可以进行更有效筛查的见解。为了提供数字证据,我们使用了800个患者的两个独立数据集,一个用于训练最佳策略,另一个用于构建计算机模拟以充当所述策略的测试平台。我们能够证明,在使用相同数量资源支出的情况下,我们的政策发现的早期癌症比目前的实践多了22%。我们提供有关我们政策基础结构的见解,并讨论我们研究结果的含义。

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