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首页> 外文期刊>Turkish Journal of Electrical Engineering and Computer Sciences >Constrained multiobjective PSO and T-S fuzzy models for predictive control
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Constrained multiobjective PSO and T-S fuzzy models for predictive control

机译:约束多目标PSO和T-S模糊模型的预测控制

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摘要

Multiobjective optimization problems are still a challenging area in the field of control system engineering. In this context, the current study describes a new multivariable predictive control scheme formulated by using the T-S fuzzy modeling method and a new constrained multiobjective PSO algorithm. The T-S fuzzy modeling technique is applied to forecast the behaviors of the nonlinear system. It also aims at establishing some conditions so that the proposed control loop is asymptotically stable. The obtained experimental results show that the combination of the philosophy of the T-S fuzzy model and multiobjective PSO is very good in the controlling of nonlinear multivariable processes. The satisfactory tracking results with small values of MRE demonstrate the proof of capability of the proposed algorithm and the accuracy of the T-S modeling approach. Meanwhile, experimental results show that, compared with the ones obtained with standard MPC, the proposed method is of high effectiveness in term of the control increments optimization and the errors in the presence of disturbances.
机译:多目标优化问题仍然是控制系统工程领域中一个充满挑战的领域。在这种情况下,当前的研究描述了一种新的采用T-S模糊建模方法制定的多变量预测控制方案和一种新的约束多目标PSO算法。 T-S模糊建模技术用于预测非线性系统的行为。它还旨在建立一些条件,以使所提出的控制回路渐近稳定。实验结果表明,将T-S模糊模型的原理与多目标PSO相结合,可以很好地控制非线性多变量过程。 MRE值较小时令人满意的跟踪结果证明了所提算法的能力和T-S建模方法的准确性。同时,实验结果表明,与标准MPC相比,该方法在控制增量优化和存在干扰方面的误差方面具有较高的有效性。

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