Distributed control for geometric pattern formation of large-scale multirobot systems

被引:1
作者
Giusti, Andrea [1 ]
Maffettone, Gian Carlo [2 ]
Fiore, Davide [3 ]
Coraggio, Marco [2 ]
di Bernardo, Mario [1 ,2 ]
机构
[1] Univ Naples Federico II, Dept Elect Engn & Informat Technol, Naples, Italy
[2] Scuola Super Meridionale, Naples, Italy
[3] Univ Naples Federico II, Dept Math & Applicat R Caccioppoli, Naples, Italy
关键词
multiagent systems; pattern formation; distributed control; swarm robotics; collective dynamics; STRATEGIES; SWARM;
D O I
10.3389/frobt.2023.1219931
中图分类号
TP24 [机器人技术];
学科分类号
080202 ; 1405 ;
摘要
Introduction: Geometric pattern formation is crucial in many tasks involving large-scale multi-agent systems. Examples include mobile agents performing surveillance, swarms of drones or robots, and smart transportation systems. Currently, most control strategies proposed to achieve pattern formation in network systems either show good performance but require expensive sensors and communication devices, or have lesser sensor requirements but behave more poorly.Methods and result: In this paper, we provide a distributed displacement-based control law that allows large groups of agents to achieve triangular and square lattices, with low sensor requirements and without needing communication between the agents. Also, a simple, yet powerful, adaptation law is proposed to automatically tune the control gains in order to reduce the design effort, while improving robustness and flexibility.Results: We show the validity and robustness of our approach via numerical simulations and experiments, comparing it, where possible, with other approaches from the existing literature.
引用
收藏
页数:16
相关论文
共 50 条
[31]   Distributed receding horizon control of large-scale nonlinear systems: Handling communication delays and disturbances [J].
Li, Huiping ;
Shi, Yang .
AUTOMATICA, 2014, 50 (04) :1264-1271
[32]   Distributed H∞ Optimal Tracking Control for Strict-Feedback Nonlinear Large-Scale Systems With Disturbances and Saturating Actuators [J].
Luy Nguyen Tan .
IEEE TRANSACTIONS ON SYSTEMS MAN CYBERNETICS-SYSTEMS, 2020, 50 (11) :4719-4731
[33]   Distributed L2-gain control of large-scale systems under gossip communication protocol [J].
Yu, Tao ;
Xiong, Junlin .
INTERNATIONAL JOURNAL OF CONTROL, 2021, 94 (04) :1054-1064
[34]   An optimal distributed trigger counting algorithm for large-scale networked systems [J].
Kim, Seokhyun ;
Lee, Jaeheung ;
Park, Yongsu ;
Cho, Yookun .
SIMULATION-TRANSACTIONS OF THE SOCIETY FOR MODELING AND SIMULATION INTERNATIONAL, 2013, 89 (07) :846-859
[35]   Application of distributed control on a large-scale production/distribution/inventory system [J].
Miranbeigi, M. ;
Moshiri, B. ;
Kian, A. Rahimi .
SYSTEMS SCIENCE & CONTROL ENGINEERING, 2016, 4 (01) :68-77
[36]   A novel optimal distributed strategy for time-varying formation tracking control in large-scale robot swarms [J].
Rezaei, Vahid ;
Khanmirza, Esmaeel .
SCIENTIFIC REPORTS, 2025, 15 (01)
[37]   Coherence and Large-Scale Pattern Formation in Coupled Logistic-Map Lattices via Computer Algebra Systems [J].
Janowicz, Maciej ;
Orlowski, Arkadiusz .
COMPUTER ALGEBRA IN SCIENTIFIC COMPUTING, CASC 2014, 2014, 8660 :230-241
[38]   Event-Triggered Distributed H∞ Constrained Control of Physically Interconnected Large-Scale Partially Unknown Strict-Feedback Systems [J].
Luy Nguyen Tan .
IEEE TRANSACTIONS ON SYSTEMS MAN CYBERNETICS-SYSTEMS, 2021, 51 (04) :2444-2456
[39]   H2 Performance Analysis and Distributed H2 Control of Interconnected Large-Scale Systems [J].
Yu, Tao ;
Song, Jun ;
Zhang, Liang ;
He, Shuping .
IEEE TRANSACTIONS ON CONTROL OF NETWORK SYSTEMS, 2023, 10 (04) :1805-1817
[40]   Distributed agent-based control and estimation over unreliable networks for a class of nonlinear large-scale systems [J].
Milian, Pablo ;
Orihuela, Luis ;
Jurado, Isabel .
INTERNATIONAL JOURNAL OF CONTROL, 2019, 92 (03) :664-676