Analysis of Contact Forces Between the Ground and the Hexapod Robot Legs During Tripod Gait
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[1] Jan Awrejcewicz,et al. Prototype, control system architecture and controlling of the hexapod legs with nonlinear stick-slip vibrations , 2016 .
[2] Darwin G. Caldwell,et al. Towards versatile legged robots through active impedance control , 2015, Int. J. Robotics Res..
[3] H. Hultborn,et al. Spinal control of locomotion – from cat to man , 2007, Acta physiologica.
[4] Jan Awrejcewicz,et al. Kinematics, Dynamics and Power Consumption Analysis of the Hexapod Robot During Walking with Tripod Gait , 2017 .
[5] Ludovic Righetti,et al. Engineering entrainment and adaptation in limit cycle systems , 2006, Biological Cybernetics.
[6] Martin Buehler,et al. Modeling and Experiments of Untethered Quadrupedal Running with a Bounding Gait: The Scout II Robot , 2005, Int. J. Robotics Res..
[7] Simon M. Danner,et al. Human spinal locomotor control is based on flexibly organized burst generators. , 2015, Brain : a journal of neurology.
[8] Yasuhiro Fukuoka,et al. Adaptive Dynamic Walking of a Quadruped Robot on Natural Ground Based on Biological Concepts , 2007, Int. J. Robotics Res..
[9] Arthur D Kuo,et al. The relative roles of feedforward and feedback in the control of rhythmic movements. , 2002, Motor control.
[10] Jianhua Wang,et al. Smooth transition between different gaits of a hexapod robot via a central pattern generators algorithm , 2012, J. Intell. Robotic Syst..
[11] Auke Jan Ijspeert,et al. Central pattern generators for locomotion control in animals and robots: A review , 2008, Neural Networks.
[12] Bin Yu,et al. Parameters Sensitivity Analysis of Position-Based Impedance Control for Bionic Legged Robots’ HDU , 2017 .
[13] Bin Li,et al. Design and simulation for a hydraulic actuated quadruped robot , 2012 .