Adding adaptable toe stiffness affects energetic efficiency and dynamic behaviors of bipedal walking.
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Qining Wang | Yan Huang | Shiqi Sun | Y. Huang | Qining Wang | Shiqi Sun
[1] S. Miyazaki,et al. Moment acting at the metatarsophalangeal joints during normal barefoot level walking , 1993 .
[2] R. B. Davis,et al. Gait characterization via dynamic joint stiffness , 1996 .
[3] Arthur D Kuo,et al. Energetics of actively powered locomotion using the simplest walking model. , 2002, Journal of biomechanical engineering.
[4] B. Nigg,et al. Mechanical energy contribution of the metatarsophalangeal joint to running and sprinting. , 1997, Journal of biomechanics.
[5] Jungwon Yoon,et al. The simplest passive dynamic walking model with toed feet: a parametric study , 2009, Robotica.
[6] Alfred A. Rizzi,et al. Series compliance for an efficient running gait , 2008, IEEE Robotics & Automation Magazine.
[7] Andy Ruina. Passive-dynamic locomotion , 2006 .
[8] Long Wang,et al. Effects of toe stiffness on ankle kinetics in a robotic transtibial prosthesis during level-ground walking , 2014 .
[9] R. B. Davis,et al. Second rocker ankle joint stiffness during gait , 1995 .
[10] Manuel G. Catalano,et al. Variable impedance actuators: A review , 2013, Robotics Auton. Syst..
[11] Bram Vanderborght,et al. MACCEPA, the mechanically adjustable compliance and controllable equilibrium position actuator: Design and implementation in a biped robot , 2007, Robotics Auton. Syst..
[12] VanderborghtB.,et al. Variable Impedance Actuators , 2013 .
[13] R. Mann,et al. Biomechanics of walking, running, and sprinting , 1980, The American journal of sports medicine.
[14] A. Ruina,et al. A collisional model of the energetic cost of support work qualitatively explains leg sequencing in walking and galloping, pseudo-elastic leg behavior in running and the walk-to-run transition. , 2005, Journal of theoretical biology.
[15] Russ Tedrake,et al. Efficient Bipedal Robots Based on Passive-Dynamic Walkers , 2005, Science.
[16] Tad McGeer,et al. Passive Dynamic Walking , 1990, Int. J. Robotics Res..
[17] Hartmut Geyer,et al. The energetic cost of adaptive feet in walking , 2011, 2011 IEEE International Conference on Robotics and Biomimetics.
[18] R. Ham,et al. Compliant actuator designs , 2009, IEEE Robotics & Automation Magazine.
[19] Qining Wang,et al. Torque–stiffness-controlled dynamic walking with central pattern generators , 2014, Biological Cybernetics.
[20] Guangming Xie,et al. Step Length and Velocity Control of a Dynamic Bipedal Walking Robot With Adaptable Compliant Joints , 2013, IEEE/ASME Transactions on Mechatronics.
[21] Gert-Peter Brüggemann,et al. The potential of human toe flexor muscles to produce force , 2012, Journal of anatomy.
[22] M. Coleman,et al. The simplest walking model: stability, complexity, and scaling. , 1998, Journal of biomechanical engineering.
[23] Olivier Stasse,et al. Faster and Smoother Walking of Humanoid HRP-2 with Passive Toe Joints , 2006, 2006 IEEE/RSJ International Conference on Intelligent Robots and Systems.
[24] S. Collins,et al. The advantages of a rolling foot in human walking , 2006, Journal of Experimental Biology.
[25] J. Gage,et al. Gait analysis: principle and applications with emphasis on its use in cerebral palsy. , 1996, Instructional course lectures.
[26] Long Wang,et al. On the Design of a Powered Transtibial Prosthesis With Stiffness Adaptable Ankle and Toe Joints , 2014, IEEE Transactions on Industrial Electronics.
[27] Koh Hosoda,et al. Biped robot design powered by antagonistic pneumatic actuators for multi-modal locomotion , 2008, Robotics Auton. Syst..
[28] Mont Hubbard,et al. Optimal foot shape for a passive dynamic biped. , 2007, Journal of theoretical biology.
[29] Atsuo Takanishi,et al. Human-like walking with knee stretched, heel-contact and toe-off motion by a humanoid robot , 2006, 2006 IEEE/RSJ International Conference on Intelligent Robots and Systems.
[30] Koichi Osuka,et al. On the embodiment that enables passive dynamic bipedal running , 2008, 2008 IEEE International Conference on Robotics and Automation.
[31] H. Jacob,et al. Pressure and force distribution characteristics under the normal foot during the push-off phase in gait , 1999 .
[32] R. Mann,et al. The function of the toes in walking, jogging and running. , 1979, Clinical orthopaedics and related research.
[33] Atsushi Konno,et al. Design and development of the biped prototype ROBIAN , 2002, Proceedings 2002 IEEE International Conference on Robotics and Automation (Cat. No.02CH37292).
[34] Bram Vanderborght,et al. Exploiting Natural Dynamics to Reduce Energy Consumption by Controlling the Compliance of Soft Actuators , 2006, Int. J. Robotics Res..
[35] Peter Goldsmith,et al. A comparison of forefoot stiffness in running and running shoe bending stiffness. , 2005, Journal of biomechanics.
[36] Long Wang,et al. Adding segmented feet to passive dynamic walkers , 2010, 2010 IEEE/ASME International Conference on Advanced Intelligent Mechatronics.
[37] Jongsang Son,et al. Kinetic role of the metatarsophalangeal joint in normal walking: Joint moment and power , 2012 .
[38] Martijn Wisse,et al. Ankle Actuation for Limit Cycle Walkers , 2008, Int. J. Robotics Res..
[39] Karl E Zelik,et al. The role of series ankle elasticity in bipedal walking. , 2014, Journal of theoretical biology.
[40] V. T. Inman,et al. PHASIC ACTIVITY OF INTRINSIC MUSCLES OF THE FOOT. , 1964, The Journal of bone and joint surgery. American volume.
[41] F Marin,et al. Can a finite set of knee extension in supine position be used for a knee functional examination? , 2006, Journal of biomechanics.
[42] A Leardini,et al. An anatomically based protocol for the description of foot segment kinematics during gait. , 1999, Clinical biomechanics.