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NEO-Fuzzy State-Space Predictive Control

机译:NEO-模糊状态空间预测控制

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This paper describes the development of a novel state-space model predictive controller. The proposed modelling structure used to capture and predict the nonlinear process dynamics lies on the concept for a neo-fuzzy neuron, deployed in state-space. The introduced approach represents a set of simple fuzzy inferences along the temporal behaviour of each input node, whose dynamics is expressed as a singleton function. The learning algorithm for the proposed modelling structure is realized as a gradient descent procedure. On the basis of the obtained neo-fuzzy state-space model, a fuzzy predictor for the purpose of predictive control is developed. The achieved predictions are used to optimize the future system response by implementing a quadratic programming optimization procedure along the stated controller horizons. The potentials of the proposed approach are studied by simulation experiments to modelling and control of a nonlinear drying plant.
机译:本文介绍了一种新型的状态空间模型预测控制器的开发。用于捕获和预测非线性过程动力学的拟议建模结构基于在状态空间中部署的新模糊神经元的概念。引入的方法表示沿每个输入节点的时间行为的一组简单模糊推论,其动态表示为单例函数。所提出的建模结构的学习算法通过梯度下降过程实现。在获得的新模糊状态空间模型的基础上,开发了用于预测控制的模糊预测器。通过沿着所述控制器范围执行二次编程优化程序,可以将获得的预测用于优化未来的系统响应。通过仿真实验研究了该方法的潜力,以对非线性干燥设备进行建模和控制。

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