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机器人技术研究进展

谭民 王硕

谭民, 王硕. 机器人技术研究进展. 自动化学报, 2013, 39(7): 963-972. doi: 10.3724/SP.J.1004.2013.00963
引用本文: 谭民, 王硕. 机器人技术研究进展. 自动化学报, 2013, 39(7): 963-972. doi: 10.3724/SP.J.1004.2013.00963
TAN Min, WANG Shuo. Research Progress on Robotics. ACTA AUTOMATICA SINICA, 2013, 39(7): 963-972. doi: 10.3724/SP.J.1004.2013.00963
Citation: TAN Min, WANG Shuo. Research Progress on Robotics. ACTA AUTOMATICA SINICA, 2013, 39(7): 963-972. doi: 10.3724/SP.J.1004.2013.00963

机器人技术研究进展

doi: 10.3724/SP.J.1004.2013.00963
基金项目: 

国家自然科学基金(61273337, 51175496)资助

详细信息
    通讯作者:

    王硕

Research Progress on Robotics

Funds: 

Supported by National Natural Science Foundation of China (61273337, 51175496)

  • 摘要: 机器人技术的研究已从传统的工业领域扩展到医疗服务、教育娱乐、勘探勘测、生物工程、救灾救援等新领域, 并快速发展. 本文简要介绍了工业机器人、移动机器人、医疗与康复机器人和仿生机器人研究中的部分主要进展, 并通过分析和梳理, 归纳了机器人技术发展中的一些重要问题, 探讨机器人技术的发展趋势.
  • [1] Xu Yang-Sheng. Intelligent robots leading high-tech development. China Science Daily, August 12, 2010 (徐扬生. 智能机器人引领高新技术发展. 科学时报, 2010-08-12)
    [2] Stephan K D, Michael K, Michael M G, Jacob L, Anesta E P. Social implications of technology: the past, the present, and the future. Proceedings of the IEEE, 2012, 100 (Special Centennial Issue): 1752-1781
    [3] McCarthy N. Autonomous Systems: Social, Legal and Ethical Issues, Technical Report, ISBN: 1903496489, Royal Academy of Engineering, 2009
    [4] Huang Yong-An, Xiong Cai-Hua, Xiong You-Lun. Research status and development trends of intelligent robot and application. International Academic Developments, 2009, (4): 38-39 (黄永安, 熊蔡华, 熊有伦. 智能机器人与应用的现状与发展趋势. 国际学术动态, 2009, (4): 38-39)
    [5] Garcia E, Jimenez M A, De Santos P G, Armada M. The evolution of robotics research — from industrial robotics to field and service robotics. IEEE Robotics and Automation Magazine, 2007, 14(1): 90-103
    [6] Tan Min, Xu De, Hou Zeng-Guang, Wang Shuo, Cao Zhi-Qiang. Advanced Robot Control. Beijing: Higher Education Press, 2007 (谭民, 徐德, 侯增广, 王硕, 曹志强. 先进机器人控制. 北京: 高等教育出版社, 2007)
    [7] Wang Tian-Ran, Qu Dao-Kui. Open system architecture for control system for industrial robot. Robot, 2002, 24(3): 256 -261 (王天然, 曲道奎. 工业机器人控制系统的开放体系结构. 机器人, 2002, 24(3): 256-261)
    [8] Sun Tian-Hui, Tian Wen-Jie, Wang Hui, Huang Tian. Kinematic calibration of 3-DOF spindle head using double-ball bar. Journal of Mechanical Engineering, 2012, 48(5): 22-27 (孙天慧, 田文杰, 王辉, 黄田. 基于球杆仪的三坐标并联动力头运动学标定方法. 机械工程学报, 2012, 48(5): 22-27)
    [9] Lv Hong-Bo, Song Yi-Xu, Jia Pei-Fa. Incorporation of prior knowledge in adaptive learning for modeling the robotic profile grinding. Robot, 2011, 33(6): 641-648 (吕洪波, 宋亦旭, 贾培发. 机器人修磨中融合先验知识的适应学习建模方法. 机器人, 2011, 33(6): 641-648)
    [10] Ma Song-De, Zhang Zheng-You. Computer Vision: Computation Theory and Primary Algorithms. Beijing: Science Press, 2003 (马颂德, 张正友. 计算机视觉: 计算理论与算法基础. 北京: 科学出版社, 2003)
    [11] Zhu Ji-Hua, Zheng Nan-Ning, Yuan Ze-Jian, Zhang Qiang. A SLAM algorithm based on central difference particle filter. Acta Automatica Sinica, 2010, 36(2): 249-257 (祝继华, 郑南宁, 袁泽剑, 张强. 基于中心差分粒子滤波的SLAM算法. 自动化学报, 2010, 36(2): 249-257)
    [12] Mukai T, Nakashima H, Kato Y, Sakaida Y, Guo S, Hosoe S. Development of a nursing-care assistant robot RIBA that can lift a human in its arms. In: Proceedings of the 2010 IEEE/RSJ International Conference on Intelligent Robots and Systems. Taipei, China: IEEE, 2010. 5996-6001
    [13] Grindle G G, Wang H W, Salatin B A, Vazquez J J, Cooper R A. Design and development of the personal mobility and manipulation appliance. Assistive Technology, 2011, 23(2): 81-92
    [14] Wagner M D, Apostolopoulos D, Shillcutt K J, Shamah B, Simmons R G, Whittaker W. The science autonomy system of the nomad robot. In: Proceedings of the 2001 IEEE International Conference on Robotics and Automation. Seoul, Korea: IEEE, 2001. 1742-1749
    [15] Ross B, Bares J, Stager D, Jackel L, Perschbacher M. An advanced teleoperation testbed. Field and Service Robotics. Berlin: Springer, 2008. 297-304
    [16] Thrun S, Montemerlo M, Dahlkamp H, Stavens D, Aron A, Diebel J, Fong P, Gale J, Halpenny M, Hoffmann G, Lau K, Oakley C, Palatucci M, Pratt V, Stang P, Strohband S, Dupont C, Jendrossek L E, Koelen C, Markey C, Rummel C, van Niekerk J, Jensen E, Alessandrini P, Bradski G, Davies B, Ettinger S, Kaehler A, Nefian A, Mahoney P. Stanley: the robot that won the DARPA grand challenge. Journal of Field Robotics, 2006, 23(9): 661-692
    [17] Zhou Bo, Dai Xian-Zhong, Han Jian-Da. Real-time 3D outdoor environment modeling for mobile robot with a laser scanner. Robot, 2012, 34(3): 321-328, 336 (周波, 戴先中, 韩建达. 基于激光扫描的移动机器人3D室外环境实时建模. 机器人, 2012, 34(3): 321-328, 336)
    [18] Li Lei, Ye Tao, Tan Min, Chen Xi-Jun. Present state and future development of mobile robot technology research. Robot, 2002, 24(5): 475-480 (李磊, 叶涛, 谭民, 陈细军. 移动机器人技术研究现状与未来. 机器人, 2002, 24(5): 475-480)
    [19] Yang Ming, Dong Bin, Wang Hong, Zhang Bo, Araújo H. Research on laser radar based real-time pose estimation for mobile robots. Acta Automatica Sinica, 2004, 30(5): 679- 687 (杨明, 董斌, 王宏, 张钹, Araújo H. 基于激光雷达的移动机器人实时位姿估计方法研究. 自动化学报, 2004, 30(5): 679-687)
    [20] Zhang Chun-Gang, Xi Yu-Geng. Sub-optimality analysis of mobile robot rolling path planning. Science in China (Series E), 2002, 32(5): 713-720) (张纯刚, 席裕庚. 移动机器人滚动路径规划的次优性分析. 中国科学E辑, 2002, 32(5): 713-720)
    [21] Yuan Kui, Xiao Han, He Wen-Hao. Survey on machine vision systems based on FPGA. Computer Engineering and Applications, 2010, 46(36): 1-6 (原魁, 肖晗, 何文浩. 采用FPGA的机器视觉系统发展现状与趋势. 计算机工程与应用, 2010, 46(36): 1-6)
    [22] Zhang Feng, Shi Li-Min, Sun Feng-Mei, Hu Zhan-Yi. An image based 3D reconstruction system for large indoor scenes. Acta Automatica Sinica, 2010, 36(5): 625-633 (张峰, 史利民, 孙凤梅, 胡占义. 一种基于图像的室内大场景自动三维重建系统. 自动化学报, 2010, 36(5): 625-633)
    [23] Li Peng, Huang Xin-Han, Wang Min. Mobile robot map building with hybrid DSm model. Journal of Huazhong University of Science and Technology (Nature Science Edition), 2008, 36(S1): 174-176 (李鹏, 黄心汉, 王敏. 混合DSm模型的移动机器人地图构建. 华中科技大学学报(自然科学版), 2008, 36(S1): 174-176)
    [24] Ren De-Hua, Lu Gui-Zhang. Thinking in formation control. Control and Decision, 2005, 20(6): 601-606 (任德华, 卢桂章. 对队形控制的思考. 控制与决策, 2005, 20(6): 601-606)
    [25] Chen Qing-Yang, Zhang Xiao-Bo, Sun Zhen-Ping, He Han-Gen. Trajectory planning for autonomous driving in unstructured environments. Journal of Central South University (Science and Technology), 2011, 42(11): 3377-3383 (陈清阳, 张小波, 孙振平, 贺汉根. 非结构化环境下自主车辆轨迹规划方法. 中南大学学报(自然科学版), 2011, 42(11): 3377-3383)
    [26] Wang Hong-Peng, Yang Yun, Liu Jing-Tai. Research and development trend of high-speed mobile robot. Automation & Instrumentation, 2011, 26(12): 1-4 (王鸿鹏, 杨云, 刘景泰. 高速移动机器人的研究现状与发展趋势. 自动化与仪表, 2011, 26(12): 1-4)
    [27] Raibert M H. Legged robots. Communications of the ACM, 1986, 29(6): 499-514
    [28] Raibert M H, Blankespoor K, Nelson G, Playter R, the BigDog Team. BigDog, the rough-terrain quadruped robot. In: Proceedings of the 17th World Congress of the International Federation of Automatic Control. Seoul, Korea: IFAC, 2008. 10822-10825
    [29] Li Yi-Bin, Li Bin, Rong Xue-Wen, Meng Jian. Mechanical design and gait planning of a hydraulically actuated quadruped bionic robot. Journal of Shandong University (Engineering Science), 2011, 41(5): 32-36, 45 (李贻斌, 李彬, 荣学文, 孟健. 液压驱动四足仿生机器人的结构设计和步态规划. 山东大学学报(工学版), 2011, 41(5): 32-36, 45)
    [30] Zhang Peng-Xiang, Liao Qi-Zheng, Wei Shi-Min, Guo Lei. The research of control system for quadruped robot with hydraulic actuate. Chinese Hydraulics and Pneumatics, 2011, (1): 29-31 (张鹏翔, 廖启征, 魏世民, 郭磊. 液压驱动的四足机器人控制系统研究. 液压与气动, 2011, (1): 29-31)
    [31] Huang Q, Kajita S, Kaneko K, Arai H, Koyachi N, Tanie K. Planning walking patterns for a biped robot. IEEE Transactions on Robotics and Automation, 2001, 17(3): 280-289
    [32] Vukobratovic M, Frank A A, Juricic D. On the stability of biped locomotion. IEEE Transactions on Biomedical Engineering, 1970, BME-17(1): 25-36
    [33] ASIMO frequently asked questions [Online], available: http: //asimo.honda.com /downloads/pdf/asimo-technical-faq.pdf, May 26, 2013
    [34] Kaneko K, Kanehiro F, Kajita S, Hirukawa H, Kawasaki T, Hirata M, Akachi K, Isozumi T. Humanoid robot HRP-2. In: Proceedings of the 2004 IEEE International Conference on Robotics and Automation. New Orleans, LA: IEEE, 2004. 1083-1090
    [35] Xiao Tao, Huang Qiang, Yang Jie, Yu Zhang-Guo, Zhang Wei-Min. Research on pushing operation by humanoid robot under certain hand manipulation trajectory. Robot, 2008, 30(5): 385-391 (肖涛, 黄强, 杨洁, 余张国, 张伟民. 给定手部作业轨迹的仿人机器人推操作研究. 机器人, 2008, 30(5): 385-391)
    [36] Tang Qing, Xiong Rong, Chu Jian. Stable biped walking based on linear search optimization algorithm. Control Theory and Applications, 2008, 25(4): 661-664, 676 (汤卿, 熊蓉, 褚健. 基于最优化线性搜索的稳定步态规划方法. 控制理论与应用, 2008, 25(4): 661-664, 676)
    [37] Yoshida K. Achievements in space robotics. IEEE Robotics and Automation Magazine, 2009, 16(4): 20-28
    [38] Wang Yong, Xie Yuan, Zhou Jian-Liang. A research survey on teleoperation of space robot through time delay. Journal of Astronautics, 2010, 31(2): 299-306 (王永, 谢圆, 周建亮. 空间机器人大时延遥操作技术研究综述. 宇航学报, 2010, 31(2): 299-306)
    [39] Jie Dang-Yang, Ni Feng-Lei, Tan Yi-Song, Liu Hong, Cai He-Gao. Development of a highly integrated large space end effector. Chinese High Technology Letters, 2012, 22(2): 186 -191 (介党阳, 倪风雷, 谭益松, 刘宏, 蔡鹤皋. 高集成度空间大型末端执行器的研制. 高技术通讯, 2012, 22(2): 186-191)
    [40] Deng Zong-Quan, Fan Xue-Bing, Gao Hai-Bo, Ding Liang. Review and key techniques for locomotive system of manned lunar rovers. Journal of Astronautics, 2012, 33(6): 675-689 (邓宗全, 范雪兵, 高海波, 丁亮. 载人月球车移动系统综述及关键技术分析. 宇航学报, 2012, 33(6): 675-689)
    [41] Chang Yong, Wang Hong-Guang, Ma Shu-Gen, Tan Da-Long. Optimal design of lunar rovers ``Rocker-Bogie'' suspension. Journal of Machine Design, 2010, 27(6): 64-70 (常勇, 王洪光, 马书根, 谈大龙. 月球车六轮摇臂转向架的优化设计. 机械设计, 2010, 27(6): 64-70)
    [42] Feng Xi-Sheng, Li Yi-Ping, Xu Hong-Li. The next generation of unmanned marine vehicles dedicated to the 50 anniversary of the human world record diving 10912m. Robot, 2011, 33(1): 113-118 (封锡盛, 李一平, 徐红丽. 下一代海洋机器人—写在人类创造下潜深度世界记录10912米50周年之际. 机器人, 2011, 33(1): 113 -118)
    [43] Rudnick D L, Davis R E, Eriksen C C, Fratantoni D M, Perry M J. Underwater gliders for ocean research. Marine Technology Society Journal, 2004, 38(2): 73-84
    [44] Ma Ling, Zhu Ai-Ping. Review of development of shipboard UAV. Winged Missiles Journal, 2009, (11): 36-41 (马凌, 朱爱平. 舰载无人机发展综述. 飞航导弹, 2009, (11): 36- 41)
    [45] Qi Jun-Tong, Han Jian-Da. Adaptive UKF and its application in fault tolerant control of rotorcraft unmanned aerial vehicle. Journal of Mechanical Engineering, 2009, 45(4): 115-124 (齐俊桐, 韩建达. 基于MIT规则的自适应Unscented卡尔曼滤波及其在旋翼飞行机器人容错控制的应用. 机械工程学报, 2009, 45(4): 115-124)
    [46] Huang Lin, Duan Zhi-Sheng, Yang Ying. Several problems on control of modern aerocraft. Science and Technology Review, 2008, 26(20): 92-98 (黄琳, 段志生, 杨莹. 现代飞行器控制的几个科学问题. 科技导报, 2008, 26(20): 92-98)
    [47] Albani J M. The role of robotics in surgery: a review. Missouri Medicine, 2007, 104(2): 166-172
    [48] Tian Zeng-Min, Lu Wang-Sheng, Wang Tian-Miao, Liu Da, Chen Yan, Zhang Guo-Lai, Zhao Quan-Jun, Bai Mang-Mang, Yin Feng. Clinical application of robotic telemanipulation system in stereotactic surgery. Chinese Journal of Surgery, 2007, 45(24): 1679-1681 (田增民, 卢旺盛, 王田苗, 刘达, 陈延, 张国来, 赵全军, 白茫茫, 尹丰. 遥操作脑立体定向手术的临床初步应用. 中华外科杂志, 2007, 45(24): 1679-1681)
    [49] Hu Hai-Yan, Sun Li-Ning, Li Man-Tian, Xiao Tao. Multi-motor control system of a continuum robot for colonoscopy. Micromotors, 2011, 44(8): 32-35 (胡海燕, 孙立宁, 李满天, 肖涛. 连续型结肠镜机器人多电机控制系统设计. 微电机, 2011, 44(8): 32-35)
    [50] Fu Yi-Li, Gao An-Zhu, Liu Hao, Li Kai, Wang Shu-Guo. Master-slave intervention of robotic catheter system. Robot, 2011, 33(5): 579-584, 591 (付宜利, 高安柱, 刘浩, 李凯, 王树国. 导管机器人系统的主从介入. 机器人, 2011, 33(5): 579-584, 591)
    [51] Díaz I, Gil J J, Sánchez E. Lower-limb robotic rehabilitation: literature review and challenges. Journal of Robotics, 2011, 2011: 759764
    [52] Marchal-Crespo L, Reinkensmeyer D J. Review of control strategies for robotic movement training after neurologic injury. Journal of NeuroEngineering and Rehabilitation, 2009, 6: 20
    [53] Chu A, Kazerooni H, Zoss A. On the biomimetic design of the Berkeley lower extremity exoskeleton (BLEEX). In: Proceedings of the 2005 IEEE International Conference on Robotics and Automation. Barcelona, Spain: IEEE, 2005. 4345-4352
    [54] Pratt J E, Krupp B T, Morse C J, Collins S H. The RoboKnee: an exoskeleton for enhancing strength and endurance during walking. In: Proceedings of the 2004 IEEE International Conference on Robotics and Automation. New Orleans, LA: IEEE, 2004. 2430-2435
    [55] Ping Wei, Dun Xiang-Ming, Chen Wei-Dong. The general overview of research on assistant robot. Mechatronics, 2010, 16(1): 17-19, 33 (平伟, 顿向明, 陈卫东. 助行机器人研究现状和展望. 机电一体化, 2010, 16(1): 17-19, 33)
    [56] Bruno S, Oussama K. Handbook of Robotics. Berlin: Springer, 2008
    [57] Huang Ying, Lu Wei, Zhao Xiao-Wen, Lian Chao, Ge Yun-Jian. Design and experiment of flexible multi-functional tactile sensors for robot skin. Robot, 2011, 33(3): 347-353, 359 (黄英, 陆伟, 赵小文, 廉超, 葛运建. 用于机器人皮肤的柔性多功能触觉传感器设计与实验. 机器人, 2011, 33(3): 347-353, 359)
    [58] Xu Cao, Zhang Ya-Nan, Shen Lin-Yong, Xu Jie-Min, Gong Zhen-Bang. Automatic insertion system for a searching and rescuing robot in ruins. Mechanical and Electrical Engineering Magazine, 2010, 27(11): 110-114 (徐草, 章亚男, 沈林勇, 徐解民, 龚振邦. 废墟狭缝搜救机器人自动送进系统研究. 机电工程, 2010, 27(11): 110-114)
    [59] Wang Yao-Nan, Wei Shu-Ning, Yin Feng, Yang Yi-Min, Tan Lei, Cao Wen-Ming. Review on key technology of de-icing robot running on overhead transmission line. Journal of Mechanical Engineering, 2011, 47(23): 30-38 (王耀南, 魏书宁, 印峰, 杨易旻, 谭磊, 曹文明. 输电线路除冰机器人关键技术综述. 机械工程学报, 2011, 47(23): 30-38)
    [60] Su Bai-Quan, Wang Tian-Miao, Liang Jian-Hong, Li Ping. Parallel mechanism design on biomimetic tail fin propulsion. Journal of Mechanical Engineering, 2009, 45(2): 88-93 (苏柏泉, 王田苗, 梁建宏, 李平. 仿生鱼尾鳍推进并联机构设计. 机械工程学报, 2009, 45(2): 88-93)
    [61] Wang T M, Wen L, Liang J H, Wu G H. Fuzzy vorticity control of a biomimetic robotic fish using a flapping lunate tail. Journal of Bionic Engineering, 2010, 7(1): 56-65
    [62] Shang L J, Wang S, Tan M, Cheng L. Swimming locomotion modeling for biomimetic underwater vehicle with two undulating long-fins. Robotica, 2012, 30(6): 913-923
    [63] Yu J Z, Tan M, Wang S, Chen E K. Development of a biomimetic robotic fish and its control algorithm. IEEE Transactions on Systems, Man, and Cybernetics — Part B: Cybernetics, 2004, 34(4): 1798-1810
    [64] Liljebäck P, Pettersen K Y, Stavdahl O, Gravdahl J T. A review on modelling, implementation, and control of snake robots. Robotics and Autonomous systems, 2012, 60(1): 29 -40
    [65] Lu Zhen-Li, Ma Shu-Gen, Li Bin, Wang Yue-Chao. 3-dimensional locomotion of a snake-like robot controlled by cyclic inhibitory CPG model. Acta Automatica Sinica, 2007, 33(1): 54-58 (卢振利, 马书根, 李斌, 王越超. 基于循环抑制CPG模型控制的蛇形机器人三维运动. 自动化学报, 2007, 33(1): 54-58)
    [66] Zhao Jie, Zhang He, Liu Yu-Bin, Chen Fu. Development and walking experiment of hexapod robot HITCR-I. Journal of South China University of Technology (Natural Science Edition), 2012, 40(12): 17-23 (赵杰, 张赫, 刘玉斌, 陈甫. 六足机器人HITCR-I的研制及步行实验. 华南理工大学学报(自然科学版), 2012, 40(12): 17-23)
    [67] Schaal S, Ijspeert A, Billard A, Vijayakumar S, Meyer J. State of the artificial rat psikharpax. From Animals to Animats 8: Proceedings of the 8th International Conference on Simulation of Adaptive Behavior. Cambridge, MA: MIT Press, 2004. 3-12
    [68] Edelman G M. Learning in and from brain-based devices. Science, 2007, 318(5853): 1103-1105
    [69] Fleming K M, Reger B D, Sanguineti V, Alford S, Mussa-Ivaldi F A. Connecting brains to robots: an artificial animal for the study of learning in vertebrate nervous systems. From Animals to Animats 6: Proceedings of the 6th International Conference on Simulation of Adaptive Behavior. Cambridge, MA: MIT Press, 2000. 61-70
    [70] Tsuda S, Zauner K P, Gunji Y P. Robot control: from silicon circuitry to cells. Biologically Inspired Approaches to Advanced Information Technology. Berlin: Springer, 2006. 20-32
    [71] Lebedev M A, Carmena J M, O'Doherty J E, Zacksenhouse M, Henriquez C S, Principe J C, Nicolelis M A L. Cortical ensemble adaptation to represent velocity of an artificial actuator controlled by a brain-machine interface. The Journal of Neuroscience, 2005, 25(19): 4681-4693
    [72] Herr H, Dennis R G. A swimming robot actuated by living muscle tissue. Journal of NeuroEngineering and Rehabilitation, 2004, 1: 6
    [73] Sato H, Peeri Y, Baghoomian E, Berry C W, Maharbiz M M. Radio-controlled cyborg beetles: a radio-frequency system for insect neural flight control. In: Proceedings of the 22nd IEEE International Conference on Micro Electro Mechanical Systems. Sorrento: IEEE, 2009. 216-219
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  • 收稿日期:  2013-05-20
  • 修回日期:  2013-05-24
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