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Self-Reconfigurable Hierarchical Frameworks for Formation Control of Robot Swarms., , , , , , and . IEEE Trans. Cybern., 54 (1): 87-100 (January 2024)Formation Control of UAVs and Mobile Robots Using Self-organized Communication Topologies., , , , , and . ANTS Conference, volume 12421 of Lecture Notes in Computer Science, page 306-314. Springer, (2020)An Evolutionary Robotics Approach to the Control of Plant Growth and Motion: Modeling Plants and Crossing the Reality Gap., , , , and . SASO, page 21-30. IEEE Computer Society, (2016)Constructing living buildings: a review of relevant technologies for a novel application of biohybrid robotics, , , , , , , , , and 1 other author(s). Journal of the Royal Society Interface, 16 (156): 20190238 (2019)Swarm robotics: Robustness, scalability, and self-X features in industrial applications., , , , and . it Inf. Technol., 61 (4): 159-167 (2019)Multi-robot Coverage Using Self-organized Networks for Central Coordination., , , , , and . ANTS Conference, volume 12421 of Lecture Notes in Computer Science, page 216-228. Springer, (2020)A large-scale, light-weight, and soft braided robot manipulator with rapid expansion capabilities., , , , , , and . RoboSoft, page 495-500. IEEE, (2021)HuGoS: A Multi-user Virtual Environment for Studying Human-Human Swarm Intelligence., , , and . ANTS Conference, volume 12421 of Lecture Notes in Computer Science, page 161-175. Springer, (2020)Learning from humans to build social cognition among robots., , , and . Frontiers Robotics AI, (February 2023)HuGoS: a virtual environment for studying collective human behavior from a swarm intelligence perspective., , , and . Swarm Intell., 15 (4): 339-376 (2021)