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Evolved Control of Natural Plants: Crossing the Reality Gap for User-Defined Steering of Growth and Motion., , , , , , and . ACM Trans. Auton. Adapt. Syst., 12 (3): 15:1-15:24 (2017)Self-organizing Nervous Systems for Robot Swarms., , , , , , , and . CoRR, (2024)On the Tradeoff Between Hardware Protection and Optimization Success: A Case Study in Onboard Evolutionary Robotics for Autonomous Parallel Parking., and . EvoApplications, volume 9028 of Lecture Notes in Computer Science, page 759-770. Springer, (2015)Self-Organized Construction with Continuous Building Material: Higher Flexibility Based on Braided Structures., , , , , , , and . FAS*W@SASO/ICCAC, page 154-159. IEEE, (2016)Biohybrid systems for environmental intelligence on living plants: WatchPlant project., , , , , , , , , and 2 other author(s). GoodIT, page 210-215. ACM, (2021)A robot to shape your natural plant: the machine learning approach to model and control bio-hybrid systems., , , , , , , and . GECCO, page 165-172. ACM, (2018)Collective Change Detection: Adaptivity to Dynamic Swarm Densities and Light Conditions in Robot Swarms., , , , and . ALIFE, page 642-649. MIT Press, (2019)WatchPlant: Networked Bio-hybrid Systems for Pollution Monitoring of Urban Areas., , , , , , , , , and . ALIFE, page 37. MIT Press, (2021)"If you could see me through my eyes": Predicting Pedestrian Perception., , , , and . CoRR, (2022)Swarm robotics: Robustness, scalability, and self-X features in industrial applications., , , , and . it Inf. Technol., 61 (4): 159-167 (2019)