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首页> 外文期刊>International Journal of Control >Constrained multivariable generalized predictive control (GPC) for anaesthesia: The quadratic-programming approach (QP)
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Constrained multivariable generalized predictive control (GPC) for anaesthesia: The quadratic-programming approach (QP)

机译:麻醉的受限多变量广义预测控制(GPC):二次编程方法(QP)

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摘要

This paper considers the extension of the standard GPC algorithm to include input rate, magnitude and output constraints using the Quadratic Programing (QP) approach on a derived nonlinear multivariable anaesthesia model comprising simultaneous control of muscle relaxation (paralysis) and unconsciousness (in terms of blood pressure measurements). Simulation results, which are presented, analysed and discussed, demonstrate the superiority of the extended version in the deterministic and stochastic cases even when low output prediction horizons are chosen, and also the great flexibility with respect to choosing the limits on the manipulated as well as the output variables. The study also reveals that when heavy external disturbances occur, the algorithm, which combines input and output constraints, performs better than either the unconstrained one or the one that includes only input constraints. Under extreme conditions, the same algorithm reduces to an algorithm with only input constraints when the phenomenon of constraints incompatibilty occurs.
机译:本文考虑了在二次衍生的非线性多变量麻醉模型上使用二次编程(QP)方法对标准GPC算法进行扩展以包括输入速率,幅度和输出约束,该模型包括同时控制肌肉松弛(麻痹)和无意识(就血液而言)压力测量)。呈现,分析和讨论的仿真结果证明,即使在选择了低输出预测范围的情况下,扩展版本在确定性和随机情况下的优越性,以及在选择操作极限和选择极限方面都具有很大的灵活性。输出变量。研究还表明,当发生严重的外部干扰时,结合了输入和输出约束的算法比无约束的算法或仅包含输入约束的算法要好。在极端条件下,当出现约束不兼容现象时,同一算法将简化为仅具有输入约束的算法。

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