Experiments in cooperative manipulation: A system perspective

In addition to cooperative dynamic control, the system incorporates real time vision feedback, a novel programming technique, and a graphical high level user interface. By focusing on the vertical integration problem, not only these subsystems are examined, but also their interfaces and interactions. The control system implements a multi-level hierarchical structure; the techniques developed for operator input, strategic command, and cooperative dynamic control are presented. At the highest level, a mouse-based graphical user interface allows an operator to direct the activities of the system. Strategic command is provided by a table-driven finite state machine; this methodology provides a powerful yet flexible technique for managing the concurrent system interactions. The dynamic controller implements object impedance control; an extension of Nevill Hogan's impedance control concept to cooperative arm manipulation of a single object. Experimental results are presented, showing the system locating and identifying a moving object catching it, and performing a simple cooperative assembly. Results from dynamic control experiments are also presented, showing the controller's excellent dynamic trajectory tracking performance, while also permitting control of environmental contact force.

[1]  Oussama Khatib,et al.  Object manipulation in a multi-effector robot system , 1988 .

[2]  Stanley A. Schneider,et al.  Object impedance control for cooperative manipulation: theory and experimental results , 1989, Proceedings, 1989 International Conference on Robotics and Automation.

[3]  S. Hayati Hybrid position/Force control of multi-arm cooperating robots , 1986, Proceedings. 1986 IEEE International Conference on Robotics and Automation.

[4]  Stanley A. Schneider Experiments in the dynamic and strategic control of cooperating manipulators , 1990 .

[5]  Tsuneo Yoshikawa,et al.  Mechanics of coordinative manipulation by multiple robotic mechanisms , 1986, Proceedings. 1987 IEEE International Conference on Robotics and Automation.

[6]  Thomas E. Alberts,et al.  Force control of a multi-arm robot system , 1988, Proceedings. 1988 IEEE International Conference on Robotics and Automation.

[7]  G. Hirzinger,et al.  Multisensory robots and sensor-based path generation , 1986, Proceedings. 1986 IEEE International Conference on Robotics and Automation.

[8]  Masaru Uchiyama,et al.  Hybrid position/Force control for coordination of a two-arm robot , 1987, Proceedings. 1987 IEEE International Conference on Robotics and Automation.

[9]  N. Hogan,et al.  Impedance Control:An Approach to Manipulation,Parts I,II,III , 1985 .