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Evolutionary discovery of self-stabilized dynamic gaits for a soft underwater legged robot.

, , , and . ICAR, page 337-344. IEEE, (2015)

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Material properties affect evolutions ability to exploit morphological computation in growing soft-bodied creatures., , , , and . ALIFE, page 234-241. MIT Press, (2016)A minimal developmental model can increase evolvability in soft robots., , , and . GECCO, page 131-138. ACM, (2017)Evolving soft locomotion in aquatic and terrestrial environments: effects of material properties and environmental transitions., , , , and . CoRR, (2017)A WSN-based testbed for energy efficiency in buildings., , and . ISCC, page 990-993. IEEE Computer Society, (2011)Evolutionary Developmental Soft Robotics As a Framework to Study Intelligence and Adaptive Behavior in Animals and Plants., , , , and . Frontiers Robotics AI, (2017)Novelty-Based Evolutionary Design of Morphing Underwater Robots., , , and . GECCO, page 145-152. ACM, (2015)An intelligent system for electrical energy management in buildings., , and . ISDA, page 702-707. IEEE, (2011)Evolving swimming soft-bodied creatures, , , , and . 15th International Conference on the Synthesis and Simulation of Living Systems (ALIFE XV), page 6. (2016)Simulating the evolution of soft and rigid-body robots., , , , , and . GECCO (Companion), page 1117-1120. ACM, (2017)Contest-Driven Soft-Robotics Boost: The RoboSoft Grand Challenge., , , , and . Front. Robotics and AI, (2016)