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首页> 外文期刊>Journal of Chemical Engineering of Japan >A learning control strategy for non-minimum phase nonlinear processes
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A learning control strategy for non-minimum phase nonlinear processes

机译:非最小相位非线性过程的学习控制策略

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This paper presents a learning control strategy for nonlinear process systems haivng inverse response.Implemented in a generalized Smith predictor configuration,the proposed control scheme integrates a learning-type nonlinear controller and a statically equivalent,minimum-phase predictor.The incorporated minimum-phase predictor is used to compensate an undesired inverse response behavior,which therefore enables the nonlinear controller to learn to control the nonlinear,non-minimum phase processes adaptively by simply using an out-ut-error basd learning algorithm.The effectiveness and applicability of the proposed scheme are demonstrated through controlling a nonlinear Van de Vusse reactor in the presence of inverse response characteristics.Performed extensively in this work.The simulation results show that the proposed learning control strategy appears to be an effective and promising approachto the direct control of non-minimum phase nonlinear processes.
机译:本文提出了一种具有逆响应的非线性过程系统的学习控制策略。在广义史密斯预测器配置中,该控制方案将学习型非线性控制器和静态等效的最小相位预测器集成在一起。用于补偿不期望的逆响应行为,因此使非线性控制器能够通过简单地使用基于错误的基础学习算法来学习自适应地控制非线性,非最小相位过程。该方案的有效性和适用性通过在存在逆响应特性的情况下控制非线性Van de Vusse反应堆进行了演示。在这项工作中进行了广泛的仿真。仿真结果表明,所提出的学习控制策略似乎是直接控制非最小相的有效且有希望的方法非线性过程。

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