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Artificial Hormone Reaction Networks - Towards Higher Evolvability in Evolutionary Multi-Modular Robotics.

, , , and . ALIFE, page 773-780. MIT Press, (2010)

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Impact of neuron models and network structure on evolving modular robot neural network controllers., , , and . GECCO, page 89-96. ACM, (2012)Evolving a Novel Bio-inspired Controller in Reconfigurable Robots., , , , and . ECAL (1), volume 5777 of Lecture Notes in Computer Science, page 132-139. Springer, (2009)The Triangle of Life., , , , , , and . ECAL, page 1056-1063. MIT Press, (2013)A hormone-based controller for evolutionary multi-modular robotics: From single modules to gait learning., , , and . IEEE Congress on Evolutionary Computation, page 1-8. IEEE, (2010)Analysis and implementation of an Artificial Homeostatic Hormone System: A first case study in robotic hardware., , , and . IROS, page 595-600. IEEE, (2009)Adaptive Action Selection Mechanisms for Evolutionary Multimodular Robotics., , , , , , , and . ALIFE, page 781-788. MIT Press, (2010)Complex Taxis-Behaviour in a Novel Bio-Inspired Robot Controller., , , , and . ALIFE, page 648-658. MIT Press, (2010)Artificial Hormone Reaction Networks - Towards Higher Evolvability in Evolutionary Multi-Modular Robotics., , , and . ALIFE, page 773-780. MIT Press, (2010)Virtual Spatiality in Agent Controllers: Encoding Compartmentalization., , , , and . EvoApplications, volume 7835 of Lecture Notes in Computer Science, page 579-588. Springer, (2013)