교착 회피를 고려한 내고장성 세다리 걸음새

Fault-Tolerant Tripod Gaits Considering Deadlock Avoidance

  • 노지명 (대구가톨릭대 전자공학과) ;
  • 양정민 (대구가톨릭대 전자공학과)
  • 발행 : 2004.08.01

초록

Fault-tolerant gait planning in legged locomotion is to design gaits with which legged robots can maintain static stability and motion continuity against a failure in a leg. For planning a robust and deadlock-free fault-tolerant gait, kinematic constraints caused by a failed leg should be closely examined with respect to remaining mobility of the leg. In this paper, based on the authors's previous results, deadlock avoidance scheme for fault-tolerant gait planning is proposed for a hexapod robot walking over even terrain. The considered fault is a locked joint failure, which prevents a joint of a leg from moving and makes it locked in a known position. It is shown that for guaranteeing the existence of the previously proposed fault-tolerant tripod gait of a hexapod robot, the configuration of the failed leg must be within a range of kinematic constraints. Then, for coping with failure situations where the existence condition is not satisfied, the previous fault-tolerant tripod gait is improved by including the adjustment of the foot trajectory. The foot trajectory adjustment procedure is analytically derived to show that it can help the fault-tolerant gait avoid deadlock resulting from the kinematic constraint and does not make any harmful effect on gait mobility. The post-failure walking problem of a hexapod robot with the normal tripod gait is addressed as a case study to show the effectiveness of the proposed scheme.

키워드

참고문헌

  1. C. Carreras and I. D. Walker, Interval methods for fault-tree analysis in robotics', IEEE Transactions on Reliability, vol. 50, no. 1, pp. 3-11, 2001 https://doi.org/10.1109/24.935010
  2. J. M. Yang and J. H. Kim, 'Fault-tolerant locomotion of the hexapod robot,' IEEE Transactions on Systems, Man, and Cybernetics-Part:B, vol. 28, no. 1, pp. 109-116, 1998 https://doi.org/10.1109/3477.658585
  3. P. V. Nagy, S. Desa and W. L. Whittaker, 'Energy based stability measures for reliable locomotion of statically stable walkers: theory and application,' International Journal of Robotics Research, vol. 13, no. 3, pp. 272-287, 1994 https://doi.org/10.1177/027836499401300307
  4. S. K. Ralpha and D. K. Pai, 'Fault tolerant locomotion for walking rotots,' in Proceedings of IEEE International Symposium on Computational Intelligence in Robotics and Automation, pp. 130-137, 1997 https://doi.org/10.1109/CIRA.1997.613849
  5. Y. J. Lee and S. Hirose, 'Three-legged walking for fault-tolerant locomotion of demining quadruped robots,' Advanced Robotics, vol. 16, no. 5, pp. 415-426, 2002 https://doi.org/10.1163/15685530260182918
  6. 양정민, 노지명, '육각 보행 로봇의 내고장성 세다리 걸음새,' 대한전기학회논문지, 제52D권, 제12호, pp. 689-695, 2003
  7. C. L. Lewis and A. A. Maciejewski, 'Fault tolerant operation of kinematically redundant manipulators for locked joint failures,' IEEE Transactions on Robotics and Automation, vol. 13, no. 4, pp. 622-629, 1997 https://doi.org/10.1109/70.611335
  8. F. L. Lewis, C. T. Abdallah and D. M. Dawson, Control of Robot Manipulators, Macmillan, NY, 1993
  9. K. N. Groom, A. A. Maciejewski and V. Balakrishnan, 'Real-time failure-tolerant control of kinematically redundant manipulators,' IEEE Transactions on Robotics and Automation, vol. 15, no. 6, pp. 1109-1116, 1999 https://doi.org/10.1109/70.817673
  10. V. R. Kumar and K. J. Waldron, 'Adaptive gait control for a walking robot,' Journal of Robotic Systems, vol. 6, no. 1, pp. 49-76, 1989 https://doi.org/10.1002/rob.4620060105
  11. S. M. Song and K. J. Waldron, Machines That Walk: The Adaptive Suspension Vehicle, MIT Press, Cambridge, MA, 1989
  12. X. Chen, K. Watanabe, K. Kiguchi and K. Izumi, 'A real-time kinematics of the translational crawl motion of a quadruped robot,' Journal of Intelligent and Robotic Systems, vol. 29, no. 2, pp. 111-131 https://doi.org/10.1023/A:1008186026952
  13. J. Estremera, E. Garcia and P. Gonzalez de Santos, 'A multi-modal and collaborative human-machine interface for a walking robot,' Journal of Intelligent and Robotic System, vol. 35, no. 4, pp. 397-425, 2002 https://doi.org/10.1023/A:1022303009950
  14. P. G. de Santos and M. A. Jimenez, 'Generation of discontinuous gait for quadruped walking vehicles,' Journal of Robotic System, vol. 12, no. 9, pp. 599-611, 1995 https://doi.org/10.1002/rob.4620120903
  15. S. Miao and D. Howard, 'Optimal tripod turning gait generation for hexapod walking machines,' Robotica, vol. 18, pp. 639-649, 2000 https://doi.org/10.1017/S0263574700002642
  16. R. B. McGhee and G. I. Iswandhi, 'Adaptive locomotion of a multilegged robot over rough terrain,' IEEE Transactions on Systems, Man, and Cybernetics, vol. 9, no. 4, pp. 176-182, 1979 https://doi.org/10.1109/TSMC.1979.4310180
  17. Y. Ding and E. Scharf, 'Deadlock avoidance for a quadruped with free gait,' in Proceedings of IEEE International Conference on Robotics and Automation, pp. 143-148, 1994 https://doi.org/10.1109/ROBOT.1994.350997
  18. W. Chen, K. H. Low and S. H. Yeo, 'Adaptive gait planning for multi-legged robots with an adjustment of center-of-gravity,' Robotica, vol. 17, pp. 391-403, 1999 https://doi.org/10.1017/S0263574799000958
  19. T. T. Lee, C. M. Liao, T. K. Chen, 'On the stability properties of hexapod tripod gait,' IEEE Transactions on Robotics and Automation, vol. 4, no. 4, pp. 427-434, 1988 https://doi.org/10.1109/56.808
  20. M. A. Jimenez, P. G. de Santos and J. Tabera, 'An omnidirectional control algorithm for walking machines based on a wave-crab gait,' Microprocessor Based and Intelligent Systems Engineering, vol. 18, pp. 355-380, 1999