4.4 Article

Decentralized self-selection of swarm trajectories: from dynamical systems theory to robotic implementation

期刊

SWARM INTELLIGENCE
卷 8, 期 4, 页码 329-351

出版社

SPRINGER
DOI: 10.1007/s11721-014-0101-7

关键词

Spatio-temporal pattern; Distributed swarm control; Brownian agents; Mixed canonical-dissipative dynamics; Mean-field approach; Braitenberg control mechanism; Robotics experimental validation

资金

  1. Swiss National Science Foundation
  2. ESF project Exploring the Physics of Small Devices
  3. EU-ICT-FET project ASSISIbf [601074]
  4. ESF project H2Swarm
  5. Swiss National Science Foundation [134317]

向作者/读者索取更多资源

In this paper, we present a distributed control strategy, enabling agents to converge onto and travel along a consensually selected curve among a class of closed planar curves. Individual agents identify the number of neighbors within a finite circular sensing range and obtain information from their neighbors through local communication. The information is then processed to update the control parameters and force the swarm to converge onto and circulate along the aforementioned planar curve. The proposed mathematical framework is based on stochastic differential equations driven by white Gaussian noise (diffusion processes). Using this framework, there is maximum probability that the swarm dynamics will be driven toward the consensual closed planar curve. In the simplest configuration where a circular consensual curve is obtained, we are able to derive an analytical expression that relates the radius of the circular formation to the agent's interaction range. Such an intimate relation is also illustrated numerically for more general curves. The agent-based control strategy is then translated into a distributed Braitenberg-inspired one. The proposed robotic control strategy is then validated by numerical simulations and by implementation on an actual robotic swarm. It can be used in applications that involve large numbers of locally interacting agents, such as traffic control, deployment of communication networks in hostile environments, or environmental monitoring.

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