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Biologically inspired self-motion estimation using the fusion of airspeed and optical flow., , and . ACC, page 1-6. IEEE, (2006)Insect-like Antennal Sensing for Climbing and Tunneling Behavior in a Biologically-inspired Mobile Robot., , , , and . ICRA, page 4176-4181. IEEE, (2005)Design and Mechanics of an Antagonistic Biomimetic Actuator System., and . ICRA, page 1629-1634. IEEE Computer Society, (1998)Surrogate Modeling for Optimizing the Wing Design of a Hawk Moth Inspired Flapping-Wing Micro Air Vehicle., , , and . Living Machines, volume 13548 of Lecture Notes in Computer Science, page 267-278. Springer, (2022)A hydrostatic robot for marine applications., , and . Robotics Auton. Syst., 30 (1-2): 103-113 (2000)Parallel Complementary Strategies For Implementing Biological Principles Into Mobile Robots., , , , , , and . Int. J. Robotics Res., 22 (3-4): 169-186 (2003)Force Sensors in Hexapod Locomotion., , and . Int. J. Robotics Res., 24 (7): 563-574 (2005)MantisBot Uses Minimal Descending Commands to Pursue Prey as Observed in Tenodera Sinensis., , , , , and . Living Machines, volume 9793 of Lecture Notes in Computer Science, page 329-340. Springer, (2016)MantisBot: The Implementation of a Photonic Vision System., , and . Living Machines, volume 9793 of Lecture Notes in Computer Science, page 429-435. Springer, (2016)Response of a Neuromechanical Insect Joint Model to Inhibition of fCO Sensory Afferents., , and . Living Machines, volume 12413 of Lecture Notes in Computer Science, page 141-152. Springer, (2020)