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Intelligent Control of Closed-Loop Sedation in Simulated ICU Patients

机译:模拟ICU患者闭环镇静的智能控制

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摘要

The intensive care unit is a challenging environment to both patient and caregiver. Continued shortages in staffing, principally in nursing, increase risk to patient and healthcare workers. To evaluate the use of intelligent systems in the improvement of patient care, an agent was developed to regulate ICU patient sedation. A temporal differencing form of reinforcement learning was used to train the agent in the administration of intravenous propofol in simulated ICU patients. The agent utilized the well-studied Marsh-Schnider pharmacoki-netic model to estimate the distribution of drug within the patient. A pharmacodynamic model then estimated drug effect. A processed form of electroencephalogram, the bispec-tral index, served as the system control variable. The agent demonstrated satisfactory control of the simulated patient's consciousness level in static and dynamic setpoint conditions. The agent demonstrated superior stability and responsiveness when compared to a well-tuned PID controller, the control method of choice in closed-loop sedation control literature.
机译:重症监护室对患者和护理人员都是充满挑战的环境。人员配置(主要是护理)方面的持续短缺增加了患者和医护人员的风险。为了评估智能系统在改善患者护理方面的使用,开发了一种药物来调节ICU患者的镇静作用。强化学习的时间差异形式用于在模拟ICU患者中训练静脉输注异丙酚的药物。该代理商利用经过充分研究的Marsh-Schnider药代动力学模型来估计患者体内药物的分布。然后,药效动力学模型估计药物作用。脑电图的一种处理形式,即双谱索引,用作系统控制变量。在静态和动态设定点条件下,该代理对模拟患者的意识水平显示出令人满意的控制。与调整好的PID控制器(闭环镇静控制文献中选择的控制方法)相比,该试剂表现出优异的稳定性和响应性。

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