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Perpetual Robot Swarm: Long-Term Autonomy of Mobile Robots Using On-the-fly Inductive Charging.

, , , , , and . J. Intell. Robotic Syst., 92 (3-4): 395-412 (2018)

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Cooperative Control of Heterogeneous Connected Vehicle Platoons: An Adaptive Leader-Following Approach., , , , and . IEEE Robotics Autom. Lett., 5 (2): 977-984 (2020)Development of a bio-inspired vision system for mobile micro-robots., , and . ICDL-EPIROB, page 81-86. IEEE, (2014)Extended Artificial Pheromone System for Swarm Robotic Applications., , , , and . ALIFE, page 608-615. MIT Press, (2019)Omnipotent Virtual Giant for Remote Human-Swarm Interaction., , , , and . RO-MAN, page 488-494. IEEE, (2021)Bio-inspired artificial pheromone system for swarm robotics applications., , , , , , , and . Adapt. Behav., (2021)Imitation of Honeybee Aggregation with Collective Behavior of Swarm Robots., , , and . Int. J. Comput. Intell. Syst., 4 (4): 739-748 (2011)Implementation of a Cue-Based Aggregation with a Swarm Robotic System., , , , and . KTW, volume 295 of Communications in Computer and Information Science, page 113-122. Springer, (2011)A Real-Time Note Transcription Technique Using Static and Dynamic Window Sizes., and . ICSAP, page 30-33. IEEE Computer Society, (2009)Finite-Time Fault-Tolerant Formation Control for Distributed Multi-Vehicle Networks With Bearing Measurements., , , and . IEEE Trans Autom. Sci. Eng., 21 (2): 1346-1357 (April 2024)Perpetual Robot Swarm: Long-Term Autonomy of Mobile Robots Using On-the-fly Inductive Charging., , , , , and . J. Intell. Robotic Syst., 92 (3-4): 395-412 (2018)