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Sequential Decision Making Using Q Learning Algorithm for Diabetic Patients

机译:糖尿病患者Q学习算法的顺序决策

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In sequential decision making, we program agent by reward and punishment. In this, agent learns to map situations to actions which results in maximizing rewards gained. This agent is also known as decision makers. It is difficult to take decision about giving specific kind and quantity of insulin dose to the diabetes patient in a critical system of insulin pump control. This paper implements the Q learning algorithm on diabetes data streams. This helps in classifying the data for diabetes dose and also helps in making decision about giving particular kind and quantity of insulin dose by generating various rules.
机译:在顺序决策中,我们通过奖励和惩罚进行计划。在此,代理人学会将情况映射到导致最大化奖励的行动。该代理人也称为决策者。在胰岛素泵控制的关键系统中,难以赋予糖尿病患者的特异性和数量的胰岛素剂量的决定。本文实现了糖尿病数据流的Q学习算法。这有助于对糖尿病剂量的数据进行分类,并且还通过产生各种规则来决定赋予特定种类和胰岛素剂量的决定。

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