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Self-adaptive and self-organising control applied to nonlinear multivariable anaesthesia: a comparative model-based study

机译:自适应和自组织控制应用于非线性多变量麻醉:基于比较模型的研究

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摘要

Various SISO feedback control techniques have been applied successfully to muscle relaxant anaesthesia in simulations and clinical trials. SISO generalised predictive control (GPC) altogether with self-organising control using fuzzy logic theory (SOFLC) are among these techniques. A multivariable model combining muscle relaxation (paralysis) and anaesthesia (unconsciousness) has been identified. The multivariable version of GPC in its basic form as well as its different extensions to include model following and observer filter polynomials is outlined in addition to the multivariable version of SOFLC. Both of these strategies are applied to the previous model whose parameters were chosen according to a Monte-Carlo method. The robustness of both control strategies is investigated and the results presented and discussed, enabling a comparison to be made between self-adaptive and self-organising techniques. It is concluded that, when a detailed mathematical model structure is available, GPC provides better control than SOFLC.
机译:在模拟和临床试验中,各种SISO反馈控制技术已成功应用于肌肉松弛麻醉。这些技术包括SISO广义预测控制(GPC)以及使用模糊逻辑理论(SOFLC)进行的自组织控制。已经确定了将肌肉松弛(麻痹)和麻醉(无意识)结合在一起的多变量模型。除了SOFLC的多变量版本外,还概述了GPC的基本形式的多变量版本以及其不同的扩展,其中包括模型跟随和观察者过滤多项式。这两种策略都适用于先前的模型,该模型的参数是根据Monte-Carlo方法选择的。研究了两种控制策略的鲁棒性,并提出和讨论了结果,从而可以对自适应技术和自组织技术进行比较。结论是,当有详细的数学模型结构可用时,GPC比SOFLC提供更好的控制。

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