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A support vector machine based control application to the experimental three-tank system

机译:基于支持向量机的控制在实验三缸系统中的应用

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This paper presents a support vector machine (SVM) approach to generalized predictive control (GPC) of multiple-input multiple-output (MIMO) nonlinear systems. The possession of higher generalization potential and at the same time avoidance of getting stuck into the local minima have motivated us to employ SVM algorithms for modeling MIMO systems. Based on the SVM model, detailed and compact formulations for calculating predictions and gradient information, which are used in the computation of the optimal control action, are given in the paper. The proposed MIMO SVM-based GPC method has been verified on an experimental three-tank liquid level control system. Experimental results have shown that the proposed method can handle the control task successfully for different reference trajectories. Moreover, a detailed discussion on data gathering, model selection and effects of the control parameters have been given in this paper.
机译:本文提出了一种用于多输入多输出(MIMO)非线性系统的广义预测控制(GPC)的支持向量机(SVM)方法。具有较高的泛化潜力并同时避免陷入局部极小值,这促使我们采用SVM算法对MIMO系统进行建模。基于SVM模型,给出了用于计算预测和梯度信息的详细而紧凑的公式,这些公式被用于最优控制动作的计算中。提出的基于MIMO SVM的GPC方法已在实验性的三罐液位控制系统上得到验证。实验结果表明,该方法可以成功地处理不同参考轨迹的控制任务。此外,本文还对数据收集,模型选择和控制参数的影响进行了详细讨论。

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