Distributed Continuous-Time Optimization With Uncertain Time-Varying Quadratic Cost Functions

IF 8.6 1区 计算机科学 Q1 AUTOMATION & CONTROL SYSTEMS
Liangze Jiang;Zheng-Guang Wu;Lei Wang
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引用次数: 0

Abstract

This article studies distributed continuous-time optimization for time-varying quadratic cost functions with uncertain parameters. We first propose a centralized adaptive optimization algorithm using partial information of the cost function. It can be seen that even if there are uncertain parameters in the cost function, exact optimization can still be achieved. To solve this problem in a distributed manner when different local cost functions have identical Hessians, we propose a novel distributed algorithm that cascades the fixed-time average estimator and the distributed optimizer. We remove the requirement for the upper bounds of certain complex functions by integrating state-based gains in the proposed design. We further extend this result to address the distributed optimization where the time-varying cost functions have nonidentical Hessians. We prove the convergence of all the proposed algorithms in the global sense. Numerical examples verify the proposed algorithms.
不确定时变二次代价函数的分布连续时间优化
研究了参数不确定时变二次代价函数的分布连续优化问题。首先提出了一种利用代价函数部分信息的集中式自适应优化算法。可以看出,即使成本函数中存在不确定参数,仍然可以实现精确的优化。为了以分布式方式解决不同局部代价函数具有相同Hessians的问题,我们提出了一种新的分布式算法,该算法将固定时间平均估计器和分布式优化器级联。我们通过在建议的设计中集成基于状态的增益来消除对某些复杂函数上界的要求。我们进一步扩展这一结果,以解决时变代价函数具有不相同的hessin的分布式优化问题。在全局意义上证明了所有算法的收敛性。数值算例验证了算法的有效性。
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来源期刊
IEEE Transactions on Systems Man Cybernetics-Systems
IEEE Transactions on Systems Man Cybernetics-Systems AUTOMATION & CONTROL SYSTEMS-COMPUTER SCIENCE, CYBERNETICS
CiteScore
18.50
自引率
11.50%
发文量
812
审稿时长
6 months
期刊介绍: The IEEE Transactions on Systems, Man, and Cybernetics: Systems encompasses the fields of systems engineering, covering issue formulation, analysis, and modeling throughout the systems engineering lifecycle phases. It addresses decision-making, issue interpretation, systems management, processes, and various methods such as optimization, modeling, and simulation in the development and deployment of large systems.
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