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Intelligent and strong robust CVS-LVAD control based on soft-actor-critic algorithm

delete2022-06-01
delete5
PRE
AI
T
Te Li
W
Wenbo Cui
N
Nan Xie
李恒 封面图
李恒 (Heng Li)
刘海波 封面图
刘海波 (Haibo Liu)
X
Xu Li
Y
Yongqing Wang *
DOI:10.1016/j.artmed.2022.102308delete
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摘要

摘要

En 中文
Left ventricular assist device (LVAD) is an effective method to treat ventricular failure. According to the physiological conditions of different patients, the device adaptively adjusts its rotation speed to change LVAD output. In this study, a physiological control system for LVAD based on deep reinforcement learning (DRL) is proposed. The system estimates the amount of blood required by LVAD based on a Starling-like method. The DRL controller regulates LVAD to adjust the speed and quickly approach the target value. The changes of vascular resistance, myocardial contractility, and the transition from rest to exercise were simulated, and the single factor and mixed factor experiments were carried out to compare the effects of DRL controller and proportional integral derivative (PID) controller, which controls the system according to the difference between measured variables and expected values. Two metrics are used to illustrate the regulation effect: the sum of absolute error (SAE) and the response time of the two controllers, where SAE is the difference between the estimated required pumped blood flow LVADQe and the actual measured blood flow LVADQm. The experimental result shows that the SAE of the DRL controller is 47.6% of that of the PID controller, and the response time of the DRL controller is 38.6% of that of the PID controller. This study demonstrates that the LVAD based on the DRL controller can respond more quickly and more effectively to the different physiological needs of a variety of patients than a PID controller.
Keyword:
Deep reinforcement learning
Heart failure
Left ventricular assist devices
Physiological control

期刊

Artificial Intelligence in Medicine 封面图
Artificial Intelligence in Medicine
IF:
6.2
论文数:
2.5K
被引数:
7.8K

机构

D
Dalian University of Technology
学者数:
6.0W
论文数: 4.4W
被引数: 5.5W
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