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Vascular morphogenesis controller: a generative model for developing morphology of artificial structures.

, , and . GECCO, page 163-170. ACM, (2017)

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Vascular Morphogenesis Controller: A Distributed Controller for Growing Artificial Structures., , and . FAS*W@SASO/ICCAC, page 273-274. IEEE, (2016)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)A robotic honeycomb for interaction with a honeybee colony., , , , , , , and . Sci. Robotics, (2023)Flora Robotica - Mixed Societies of Symbiotic Robot-Plant Bio-Hybrids., , , , , , , , , and 4 other author(s). SSCI, page 1102-1109. IEEE, (2015)Vascular morphogenesis controller: a generative model for developing morphology of artificial structures., , and . GECCO, page 163-170. ACM, (2017)Riverine Sediment Changes and Channel Pattern of a Gravel-Bed Mountain Torrent., , , , , , and . Remote. Sens., 12 (18): 3065 (2020)Development of morphology based on resource distribution: Finding the shortest path in a maze by vascular morphogenesis controller., , and . ECAL, page 428-429. MIT Press, (2017)An Agent-based, Interactive Simulation Model of Root Growth, , and . ALIFE 2024: Proceedings of the 2024 Artificial Life Conference, MIT Press, (2024)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)