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A neurodynamic approach to bicriteria model predictive control of nonlinear affine systems based on a Goal Programming formulation

机译:基于目标规划公式的非线性仿射系统双标准模型预测控制的神经动力学方法

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This paper presents a neurodynamic approach to bicriteria model predictive control (MPC) of nonlinear affine systems based on a goal programming formulation. Bicriteria MPC refers to finding optimal control inputs that minimizes two performance indexes corresponding to tracking errors and control efforts. The bicriteria MPC is formulated as the solution to a nonlinear optimization problem via goal programming technique and is solved by using a two-layer recurrent neural network. Simulation results are included to illustrate the effectiveness of the proposed approach.
机译:本文提出了一种基于目标规划公式的非线性仿射系统双标准模型预测控制(MPC)的神经动力学方法。 Bicriteria MPC是指找到最佳控制输入,该输入将与跟踪误差和控制工作相对应的两个性能指标最小化。通过目标编程技术将双标准MPC公式化为非线性优化问题的解决方案,并使用两层递归神经网络对其进行求解。仿真结果包括在内,以说明所提出方法的有效性。

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