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具有集合约束的二阶离散时间多智能体系统的分布式优化

Distributed Optimization for Second-Order Discrete-Time Multiagent Systems With Set Constraints.

作者信息

Zou Yao, Xia Kewei, Huang Bomin, Meng Ziyang

出版信息

IEEE Trans Neural Netw Learn Syst. 2023 Sep;34(9):5629-5639. doi: 10.1109/TNNLS.2021.3130173. Epub 2023 Sep 1.

Abstract

The optimization problem of second-order discrete-time multiagent systems with set constraints is studied in this article. In particular, the involved agents cooperatively search an optimal solution of a global objective function summed by multiple local ones within the intersection of multiple constrained sets. We also consider that each pair of local objective function and constrained set is exclusively accessible to the respective agent, and each agent just interacts with its local neighbors. By borrowing from the consensus idea, a projection-based distributed optimization algorithm resorting to an auxiliary dynamics is first proposed without interacting the gradient information of local objective functions. Next, by considering the local objective functions being strongly convex, selection criteria of step size and algorithm parameter are built such that the unique solution to the concerned optimization problem is obtained. Moreover, by fixing a unit step size, it is also shown that the optimization result can be relaxed to the case with just convex local objective functions given a properly chosen algorithm parameter. Finally, practical and numerical examples are taken to verify the proposed optimization results.

摘要

本文研究了具有集合约束的二阶离散时间多智能体系统的优化问题。具体而言,所涉及的智能体在多个约束集的交集内协同搜索由多个局部目标函数求和得到的全局目标函数的最优解。我们还考虑到每对局部目标函数和约束集仅对相应的智能体可用,并且每个智能体仅与其局部邻居进行交互。通过借鉴共识思想,首先提出了一种基于投影的分布式优化算法,该算法借助辅助动力学,无需交互局部目标函数的梯度信息。接下来,考虑局部目标函数为强凸函数,建立了步长和算法参数的选择准则,从而得到相关优化问题的唯一解。此外,通过固定单位步长,还表明在适当选择算法参数的情况下,优化结果可以放宽到局部目标函数仅为凸函数的情况。最后,通过实际和数值例子验证了所提出的优化结果。

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