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A swarm intelligence-based tuning method for the sliding mode generalized predictive control

机译:基于群智能的滑模广义预测控制方法

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摘要

This work presents an automatic tuning method for the discontinuous component of the Sliding Mode Generalized Predictive Controller (SMGPC) subject to constraints. The strategy employs Particle Swarm Optimization (PSO) to minimize a second aggregated cost function. The continuous component is obtained by the standard procedure, by Quadratic Programming (QP), thus yielding an online dual optimization scheme. Simulations and performance indexes for common process models in industry, such as nonminimum phase and time delayed systems, result in a better performance, improving robustness and tracking accuracy.
机译:这项工作提出了一种自动调整方法,用于受约束的滑模广义预测控制器(SMGPC)的不连续分量。该策略采用粒子群优化(PSO)来最小化第二个汇总成本函数。通过标准程序,通过二次编程(QP)获得连续分量,从而产生在线对偶优化方案。行业中常见过程模型(例如非最小相位和时间延迟系统)的仿真和性能指标可带来更好的性能,更高的鲁棒性和跟踪精度。

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