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LEAD: a methodology for learning efficient approaches to medical diagnosis

机译:铅:一种学习有效医学诊断方法的方法

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Determining the most efficient use of diagnostic tests is one of the complex issues facing medical practitioners. With the soaring cost of healthcare, particularly in the US, there is a critical need for cutting costs of diagnostic tests, while achieving a higher level of diagnostic accuracy. This paper develops a learning based methodology that, based on patient information, recommends test(s) that optimize a suitable measure of diagnostic performance. A comprehensive performance measure is developed that accounts for the costs of testing, morbidity, and mortality associated with the tests, and time taken to reach diagnosis. The performance measure also accounts for the diagnostic ability of the tests. The methodology combines tools from the fields of data mining (rough set theory, in particular), utility theory, Markov decision processes (MDP), and reinforcement learning (RL). The rough set theory is used in extracting diagnostic information in the form of rules from the medical databases. Utility theory is used in bringing various nonhomogenous performance measures into one cost based measure. An MDP model together with an RL algorithm facilitates obtaining efficient testing strategies. The methodology is implemented on a sample problem of diagnosing solitary pulmonary nodule (SPN). The results obtained are compared with those from four alternative testing strategies. Our methodology holds significant promise to improve the process of medical diagnosis.
机译:确定最有效地使用诊断测试是从业人员面临的复杂问题之一。随着医疗保健成本的飞涨,尤其是在美国,迫切需要削减诊断测试的成本,同时实现更高水平的诊断准确性。本文开发了一种基于学习的方法,该方法基于患者的信息,推荐了可优化诊断性能的合适度量的测试。已开发出一种综合的性能指标,该指标考虑了测试成本,与测试相关的发病率和死亡率,以及达到诊断所需的时间。性能指标还考虑了测试的诊断能力。该方法结合了来自数据挖掘(尤其是粗糙集理论),效用理论,马尔可夫决策过程(MDP)和强化学习(RL)领域的工具。粗糙集理论用于从医学数据库中以规则的形式提取诊断信息。效用理论被用于将各种非均质的性能指标纳入一种基于成本的指标中。 MDP模型与RL算法一起有助于获得有效的测试策略。该方法是针对诊断孤立性肺结节(SPN)的样本问题实施的。将获得的结果与四种替代测试策略的结果进行比较。我们的方法学对改善医学诊断过程具有巨大的希望。

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