Flocking and Target Interception Control for Formations of Nonholonomic Kinematic Agents
December 05, 2018 Β· Declared Dead Β· π IEEE Transactions on Control Systems Technology
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Authors
Milad Khaledyan, Tairan Liu, Marcio de Queiroz
arXiv ID
1812.02051
Category
cs.RO: Robotics
Cross-listed
math.DS
Citations
45
Venue
IEEE Transactions on Control Systems Technology
Last Checked
6 months ago
Abstract
In this work, we present solutions to the flocking and target interception problems of multiple nonholonomic unicycle-type robots using the distance-based framework. The control laws are designed at the kinematic level and are based on the rigidity properties of the graph modeling the sensing/communication interactions among the robots. An input transformation is used to facilitate the control design by converting the nonholonomic model into the single integrator-like equation. We assume only a subset of the robots know the desired, time-varying flocking velocity or the target's motion. The resulting control schemes include distributed, variable structure observers to estimate the unknown signals. Our stability analyses prove convergence to the desired formation while tracking the flocking velocity or the target motion. The results are supported by experiments.
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