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Using inverse linear quadratic method for systematic tuning of performance index in nonlinear model predictive control

机译:使用逆线性二次方法来系统调整非线性模型预测控制中性能指标的系统调整

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In this paper, we propose to use the inverse linear quadratic (ILQ) method for efficient tuning of performance index in nonlinear model predictive control (NMPC). First a linear quadratic regulator is designed for the linearized model using the ILQ approach and then inverse optimality conditions are used for tuning of quadratic weights in the performance index of NMPC. After that, NMPC algorithm is applied to the nonlinear model. This approach provides some free parameters which can be tuned for a trade-off between speed of the system's response and magnitude of the control input.
机译:在本文中,我们建议使用反线性二次(ILQ)方法来高效调整非线性模型预测控制(NMPC)中的性能指标。首先,使用ILQ方法设计线性二次调节器,然后使用ILQ方法进行线性化模型,然后使用逆最优条件来调整NMPC性能指数中的二次重量。之后,NMPC算法应用于非线性模型。该方法提供了一些可自由参数,可以在系统响应和控制输入的幅度的速度之间进行折衷。

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