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A finite-horizon Markov decision process model for cancer chemotherapy treatment planning: an application to sequential treatment decision making in clinical trials

机译:癌症化疗治疗规划的有限地平马尔可夫决策过程模型:临床试验中顺序治疗决策的应用

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摘要

Cancer is one of the major diseases that seriously threaten the human life. Increasing interest in cancer treatment strategies for chemotherapy treatment planning and optimal drug administration has created new applications for mathematical modeling. In this paper, we develop a finite-horizon Markov decision process (MDP) model for cancer chemotherapy treatment planning that could advise selection of the optimal policy for the chemotherapy regimen according to the patient's condition. The proposed model uses a finite action space of optimal cancer chemotherapy regimens for gastric and gastroesophageal cancers resulted from the proposed optimization model and a finite state space of patients' toxicity levels. Results show that the proposed approach yields the optimal sequence of gastric and gastroesophageal cancer chemotherapy treatment regimens for a period of chemotherapy treatment which makes possible designing clinical trials for sequential treatments.
机译:癌症是严重威胁人类生活的主要疾病之一。越来越多的癌症治疗策略对化疗治疗计划和最佳药物管理局的兴趣已经为数学建模创造了新的应用。在本文中,我们开发了一个有限地平的马尔可夫决策过程(MDP)模型,用于癌症化疗治疗规划,可以根据患者的病情向化疗方案的最佳政策提供建议。该建议的模型采用了胃和胃食管癌的最佳癌症化疗方案的有限作用空间,由所提出的优化模型和患者毒性水平的有限状态空间产生。结果表明,该拟议方法产生了一段时间化疗治疗的胃和胃食性癌症化疗治疗方案的最佳序列,这使得为顺序治疗的临床试验提供了临床试验。

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