Affiliation:
1. The Key Laboratory of Systems and Control, Academy of Mathematics and System Science, Chinese Academy of Sciences, Beijing 100190, China
Abstract
In this paper, distributed optimization control for a group of autonomous Lagrangian systems is studied to achieve an optimization task with local cost functions. To solve the problem, two continuous-time distributed optimization algorithms are designed for multiple heterogeneous Lagrangian agents with uncertain parameters. The proposed algorithms are proved to be effective for those heterogeneous nonlinear agents to achieve the optimization solution in the semi-global sense, even with the exponential convergence rate. Moreover, simulation adequately illustrates the effectiveness of our optimization algorithms.
Funder
Beijing Natural Science Foundation
National Natural Science Foundation of China (CN)
Program 973
Publisher
World Scientific Pub Co Pte Lt
Subject
Control and Optimization,Aerospace Engineering,Automotive Engineering,Control and Systems Engineering
Cited by
56 articles.
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