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An off-line NMPC strategy for continuous-time nonlinear systems using an extended modal series method

机译:使用扩展模态序列方法的连续时间非线性系统的离线NMPC策略

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This paper presents a new off-line nonlinear model predictive control (NMPC) approach for continuous-time affine-input nonlinear systems. In this approach, the NMPC-related nonlinear two-point boundary value problem derived from the Pontryagin's maximum principle is solved by the extended modal series method. The resulting suboptimal control law explicitly depends on the initial conditions and is updated by replacing the initial conditions with the new state measurements in future sampling instants. Therefore, there is no need to repeat the recursive online optimization process in each sampling instant. Since the applicability of NMPC is generally restricted by computational burden of the online optimization, we propose an NMPC scheme, which not only reduces the online computational burden significantly, but also can be applied to fast dynamic systems with short prediction horizons. An efficient algorithm is presented which approximates the order of the modal series such that feasibility of the optimization problem is guaranteed. Closed-loop stability of the proposed NMPC approach is shown using the off-line terminal region calculations suggested in quasi-infinite horizon NMPC scheme. The applicability and effectiveness of the proposed approach are illustrated by two numerical examples.
机译:本文提出了一种用于连续时间仿射输入非线性系统的离线非线性模型预测控制(NMPC)新方法。在这种方法中,通过扩展模数级数法解决了由庞特里亚金最大原理导出的与NMPC有关的非线性两点边值问题。产生的次优控制定律明确地取决于初始条件,并通过在将来的采样时刻用新的状态测量值代替初始条件来进行更新。因此,无需在每个采样瞬间重复进行递归在线优化过程。由于NMPC的适用性通常受到在线优化的计算负担的限制,因此我们提出了一种NMPC方案,该方案不仅可以大大降低在线计算的负担,而且可以应用于具有较短预测范围的快速动态系统。提出了一种有效的算法,该算法可以近似估计模态序列的阶数,从而可以确保优化问题的可行性。使用拟无限水平NMPC方案中建议的离线终端区域计算,显示了所提出NMPC方法的闭环稳定性。通过两个数值示例说明了该方法的适用性和有效性。

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