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Time-distributed optimization for real-time model predictive control: Stability, robustness, and constraint satisfaction

机译:实时模型预测控制的时间分布式优化:稳定性,鲁棒性和约束满足

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Time-distributed optimization is an implementation strategy that can significantly reduce the computational burden of model predictive control. When using this strategy, optimization iterations are distributed over time by maintaining a running solution estimate for the optimal control problem and updating it at each sampling instant. The resulting controller can be viewed as a dynamic compensator which is placed in closed-loop with the plant. This paper presents a general systems theoretic analysis framework for time-distributed optimization. The coupled plant-optimizer system is analyzed using input-to-state stability concepts and sufficient conditions for stability and constraint satisfaction are derived. In particular, we demonstrate that it is possible to recover the qualitative stability, robustness, and constraint satisfaction properties of the optimal model predictive control feedback law using a finite number of optimization algorithm iterations per sampling instant. When applied to time-distributed sequential quadratic programming, the framework significantly extends the existing theoretical analysis for the real-time iteration scheme. Numerical simulations are presented that demonstrate the effectiveness of the scheme. (C) 2020 Elsevier Ltd. All rights reserved.
机译:时间分布式优化是一种实现策略,可以显着降低模型预测控制的计算负担。使用此策略时,通过维护最佳控制问题的运行解决方案估计并在每个采样瞬间更新它来随时间分发优化迭代。可以将所得控制器视为动态补偿器,其与工厂闭合。本文介绍了一般系统的定时分析优化理论分析框架。使用输入到状态稳定性概念和稳定性和约束满足的充分条件分析耦合的植物优化器系统。特别地,我们证明,使用每个采样瞬发的有限数量的优化算法迭代,可以恢复最佳模型预测控制反馈定律的定性稳定性,鲁棒性和约束满足性质。当应用于时间分布式顺序二次编程时,该框架显着扩展了实时迭代方案的现有理论分析。提出了数值模拟,证明了该方案的有效性。 (c)2020 elestvier有限公司保留所有权利。

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