Modelling traditional Chinese medicine therapy planning with POMDP

Qi Feng, Xuezhong Zhou, Houkuan Huang, Xiaoping Zhang, Runshun Zhang
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引用次数: 1

Abstract

During the traditional Chinese medicine (TCM) treatment procedure, the manifestations of patients could be observed but the health state and TCM diagnosis of patient are uncertain. Thus, the real–world TCM therapy planning is a typical kind of dynamic decision making under uncertainty. Partially observable Markov decision process (POMDP) constitutes a powerful mathematical model for planning and is suitable for TCM therapy planning. In this paper, we apply POMDP to solve TCM therapy planning problem with all the dynamics inferred from TCM clinical data for type 2 diabetes treatment. This POMDP model contains 55 health states, 67 observation variables and 414 actions, it could order prescriptions for patients with type 2 diabetes. The results demonstrate that the POMDP model for TCM therapy planning is reasonable and helpful in clinical practice.
基于POMDP的中医治疗计划建模
在中医治疗过程中,可以观察到患者的表现,但对患者的健康状况和中医诊断不确定。因此,现实世界的中医治疗计划是一种典型的不确定条件下的动态决策。部分可观察马尔可夫决策过程(POMDP)是一种强大的规划数学模型,适用于中医治疗计划。在本文中,我们利用从中医临床数据中推断出的所有动态,应用POMDP来解决中医治疗2型糖尿病的治疗计划问题。该模型包含55个健康状态、67个观察变量和414个动作,可以为2型糖尿病患者开具处方。结果表明,POMDP模型对中医治疗计划的制定是合理的,具有一定的临床应用价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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