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Performance evaluation of multiplexed model predictive control for a large airliner in nominal and contingency scenarios

机译:在名义和应急情况下大型客机的多模型预测控制的性能评估

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Model predictive control allows systematic handling of physical and operational constraints through the use of constrained optimisation. It has also been shown to successfully exploit plant redundancy to maintain a level of control in scenarios when faults are present. Unfortunately, the computational complexity of each individual iteration of the algorithm to solve the optimisation problem scales cubically with the number of plant inputs, so the computational demands are high for large MIMO plants. Multiplexed MPC only calculates changes in a subset of the plant inputs at each sampling instant, thus reducing the complexity of the optimisation. This paper demonstrates the application of multiplexed model predictive control to a large transport airliner in a nominal and a contingency scenario. The performance is compared to that obtained with a conventional synchronous model predictive controller, designed using an equivalent cost function.
机译:模型预测控制允许通过使用约束优化来系统地处理物理和操作约束。还已经证明,在存在故障的情况下,它可以成功利用工厂冗余来维持控制级别。不幸的是,用于解决优化问题的算法的每个单独迭代的计算复杂度与工厂输入的数量成三次方,因此对于大型MIMO工厂,计算需求很高。复用的MPC仅在每个采样时刻计算工厂输入子集的变化,从而降低了优化的复杂性。本文演示了多模型预测控制在名义和应急情况下在大型运输机上的应用。将性能与使用等效成本函数设计的常规同步模型预测控制器获得的性能进行比较。

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