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Motor Learning and Body Size within an Insect Brain Computational Model.

, , and . Living Machines, volume 8608 of Lecture Notes in Computer Science, page 367-369. Springer, (2014)

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Exploiting Imperfections in Perception-Action Learning., , and . SMC, page 1454-1458. IEEE, (2019)Roving Robots Gain from an Orientation Algorithm of Fruit Flies and Predict a Fly Decision-Making Algorithm., , , , , , and . Living Machines, volume 8608 of Lecture Notes in Computer Science, page 433-435. Springer, (2014)A spiking network for spatial memory formation: Towards a fly-inspired ellipsoid body model., , , and . IJCNN, page 1-6. IEEE, (2013)Motor-Skill Learning in an Insect Inspired Neuro-Computational Control System., , , and . Frontiers Neurorobotics, (2017)A Systematic Nomenclature for the Insect Brain, , , , , , , , , and 8 other author(s). Neuron, 81 (4): 755--765 (February 2014)Neurobiological Models of the Central Complex and the Mushroom Bodies.. Spatial Temporal Patterns for Action-Oriented Perception in Roving Robots II, volume 21 of Cognitive Systems Monographs, Springer, (2014)A Mushroom Bodies inspired spiking network for classification and sequence learning., , , , and . IJCNN, page 1-8. IEEE, (2015)A Fly-Inspired Mushroom Bodies Model for Sensory-Motor Control Through Sequence and Subsequence Learning., , , , and . Int. J. Neural Syst., 26 (6): 1650035:1-1650035:18 (2016)Visual motion integration controls attractiveness of objects in walking flies and a mobile robot., and . IROS, page 3559-3564. IEEE, (2008)Integrative Biomimetics of Autonomous Hexapedal Locomotion., , , , , , , , , and 7 other author(s). Frontiers Neurorobotics, (2019)