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Automatic Regulation of Hemodynamic Variables in Acute Heart Failure by a Multiple Adaptive Predictive Controller Based on Neural Networks

机译:基于神经网络的多重自适应预测控制器对急性心力衰竭血流动力学变量的自动调节

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摘要

Automated drug-delivery systems that can tolerate various responses to therapeutic agents have been required to control hemodynamic variables with heart failure. This study is intended to evaluate the control performance of a multiple adaptive predictive control based on neural networks (MAPCNN) to regulate the unexpected responses to therapeutic agents of cardiac output (CO) and mean arterial pressure (MAP) in cases of heart failure. The NN components in the MAPCNN learned nonlinear responses of CO and MAP determined by hemodynamics of dogs with heart failure. The MAPCNN performed ideal control against unexpected (1) drug interactions, (2) acute disturbances, and (3) time-variant responses of hemodynamics [average errors between setpoints (+35 ml kg−1 min−1 in CO and ±0 mmHg in MAP) and observed responses; 6.4, 3.7, and 4.2 ml kg−1 min−1 in CO and 1.6, 1.4, and 2.7 mmHg (10.5, 20.8, and 15.3 mmHg without a vasodilator) in MAP] during 120-min closed-loop control. The MAPCNN could also regulate the hemodynamics in actual heart failure of a dog. Robust regulation of hemodynamics by the MAPCNN was attributable to the ability of on-line adaptation to adopt various responses and predictive control using the NN. Results demonstrate the feasibility of applying the MAPCNN using a simple NN to clinical situations.
机译:为了控制心力衰竭的血液动力学变量,已经需要能够耐受对治疗剂的各种反应的自动药物递送系统。这项研究旨在评估基于神经网络(MAPCNN)的多重自适应预测控制的控制性能,以调节心力衰竭患者对心输出量(CO)和平均动脉压(MAP)的意外反应。 MAPCNN中的NN组件学习了由心衰犬的血液动力学决定的CO和MAP的非线性响应。 MAPCNN对意外的(1)药物相互作用,(2)急性干扰和(3)血流动力学时变响应[设定点之间的平均误差(+35 ml kg −1 min < CO中的sup> -1 和MAP中的±0mmHg)和观察到的响应; 6.4、3.7和4.2 ml kg −1 min -1 在CO和1.6、1.4和2.7mmHg(10.5、20.8和15.3 mmHg(无血管扩张剂))中MAP]在120分钟的闭环控制期间。 MAPCNN还可以调节狗的实际心力衰竭的血液动力学。 MAPCNN对血流动力学的鲁棒调节归因于在线适应能力以采用NN采取各种响应和预测控制。结果证明了使用简单NN将MAPCNN应用于临床情况的可行性。

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