[1] I-Limb Hand Brochure, [2011-05-23],
http://www.touchBionics.com/document-library
[2] Otto Bock Michelangelo hand, [2011-05-23],
http://www.swisswuff.ch/tech/?p=145
[3] Li N, Zhao J D, Jiang L, Liu H, Cai H G. Embedded control system for multi-DOF anthropomorphic prosthetic hand and its grasping strategy. Robot, 2011, 33, 22–27. (in Chinese)
[4] Cipriani C, Controzzi M, Carrozza M C. Objectives, criteria and methods for the design of the SmartHand transradial prosthesis. Robotica, 2009, 28, 919–927.
[5] Antfolk C, Cipriani C, Controzzi M, Carrozza M C, Lundborg G, Rosen B, Sebelius F. Using EMG for real-time prediction of joint angles to control a prosthetic hand equipped with a sensory feedback system. Journal of Medical and Biological Engineering, 2010, 30, 399–406.
[6] Hamdi N, Dweiri Y, Al-Abdallat Y, Haneya T. A practical and feasible control system for bifunctional myoelectric hand prosetheses. Prosthetics and Orthotics International, 2010, 34, 195–205.
[7] Pons J L, Rocon E, Ceres R, Reynaerts D, Saro B, Levin S, van Moorleghem W. The MANUS-HAND dextrous robotics upper limb prosthesis: Mechanical and manipulation aspects. Autonomous Robots, 2004, 16, 143–163.
[8] Wojtczak P, Amaral T G, Dias O P, Wolczowski A, Kurzynski M. Hand movement recognition based on biosignal analysis. Engineering Applications of Artificial Intelligence, 2009, 22, 608–615.
[9] Bitzer S, van der Smagt P. Learning EMG control of a robotic hand: Towards Active Prostheses. Proceedings of 2006 IEEE International Conference on Robotics and Automation, Orlando, USA, 2006, 2819–2823.
[10] Yang D P, Zhao J D, Gu Y K, Wang X Q, Li N, Jiang L, Liu H. An anthropomorphic robot hand developed based on underactuated mechanism and controlled by EMG signals. Journal of Bionic Engineering, 2009, 6, 255–263.
[11] Li N, Jiang L, Yang D P, Wang X Q, Fan S W, Liu H. Development of an anthropomorphic prosthetic hand for man-machine interaction. Proceedings of the 3rd International Conference on Intelligent Robotics and Applications, Shanghai, China, 2010, 6424, 38–46.
[12] Tenore F V G, Ramos A, Fahmy A, Acharya S, Etienne-Cummings R, Thakor N V. Decoding of individuated finger movements using surface electromyography. IEEE Transactions on Biomedical Engineering, 2009, 56, 1427–1434.
[13] Honda Y, Weber S, Lueth T C. Intelligent recognition system for hand gestures. Proceedings of the 3rd International IEEE EMBS Conference on Neural Engineering, Kohala Coast, USA, 2007, 611–614.
[14] Phillips S L, Craelius W. Residual kinetic imaging a versatile interface for prosthetic control. Robotica, 2005, 23, 277–282.
[15] Kuttuva M, Burdea G, Flint J, Craelius W. Manipulation practice for upper-limb amputees using virtual reality. Presence-Teleoperators and Virtual Environments, 2005, 14, 175–182.
[16] Yungher D, Craelius W. Discriminating 6 grasps using force myography of the forearm. Proceedings of the American Society of Biomechanics Northeast Conference, University of Maryland, MD, USA, 2007, 1, 29.
[17] Cortes C, Vapnik V. Support-vector network. Machine Learning, 1995, 20, 273–297.
[18] Burges C J C. A tutorial on support vector machines for pattern recognition. Data Mining and Knowledge Discovery, 1998, 2, 121–167.
[19] Claudio C, Patrick V D S. Surface EMG in advanced hand prosthetics. Biological Cybernetics, 2009, 100, 35–47.
[20] Wang X Q, Liu Y W, Yang D P, Li N, Jiang L, Liu H. Progress in the biomechatronic design and control of a hand. Proceedings of the 23rd IEEE/RSJ International Conference on Intelligent Robots and Systems, 2010, Taipei, 5880–5885.
[21] Hsu C W, Lin C J. A comparison of methods for multiclass support vector machines. IEEE Transactions on Neural Networks, 2002, 13, 415–425.
[22] Cutkosky M R. On grasp choice, grasp models, and the design of hands for manufacturing tasks. IEEE Transactions on Robotics and Automation, 1989, 5, 269–279.
[23] Chang C, Lin C. LIBSVM: A Library for Support Vector Machines, [2009-07-20],
http://www.csie.ntu.edu.tw/~cjlin/ libsvm/index.html
[24] Yang D P, Zhao J D, Gu Y K, Jiang L, Liu H. EMG pattern recognition and grasping force estimation: Improvement to the myocontrol of multi-DOF prosthetic hands. Proceedings of 2009 IEEE/RSJ International Conference on Intelligent Robots and Systems, St Louis, USA, 2009, 516–521.
[25] Zhao J D, Xie Z W, Jiang L, Cai H G, Liu H, Gerd H. Levenberg-Marquardt based neural network control for a five-fingered prosthetic hand. Proceedings of 2005 IEEE International Conference on Robotics and Automation, Barcelona, Spain, 2005, 4482–4487.
[26] Claudio C, Angelo E F, Ciulio S. Multi-subject daily-life activity EMG-based control of mechanical hands. Journal of Neuroengineering and Rehabilitation, 2009, 6, 41.
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