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Fixed-time cluster consensus for multi-agent systems with objective optimization on directed networks
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  • Suna Duan,
  • Zhiyong Yu,
  • Haijun Jiang,
  • Deqiang Ouyang
Suna Duan
Xinjiang University College of Mathematics and System Sciences

Corresponding Author:[email protected]

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Zhiyong Yu
Xinjiang University
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Haijun Jiang
Xinjiang University College of Mathematics and System Sciences
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Deqiang Ouyang
The University of Hong Kong
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Abstract

This paper studies the cluster consensus of multi-agent systems (MASs) with objective optimization on directed and detail balanced networks, in which the global optimization objective function is a linear combination of local objective functions of all agents. Firstly, a directed and detail balanced network is constructed that depends on the weights of the global objective function. Secondly, two new continuous-time optimization algorithms are proposed based on time-invariant and time-varying cost functions to ensure that all agents reach cluster consensus within a fixed-time, and the global objective function asymptotically reaches the optimal solution. Finally, two examples are presented to show the efficacy of the theoretical results.