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Microwave-shielded polar molecules
Non-Hermitian topology and braiding with photonic crystals
物理系colloquium: 超快激光精密制造
Remarks on fluctuations in large N dynamics
报告题目:
Sensor Fusion in Robotic Work-Space Sensing and Control
 报告人:
Rolf Johansson,
Lund University, Dept Automatic Control; 
Visiting Researcher at Tsinghua University, 
Dept. Precision Instruments & MEMS Lab
报告时间:
2012-10-11 15:30
报告地点:
精仪系4楼大会议室(4304房间)
主办单位:
精仪系
  简介:

Abstract— Exteroception or robotic work-space sensing is necessary for efficient usage of robots for purposes of manipulation and manufacturing in new and precision-demanding applications—e.g., robotic precision machining, assembly operations, surgical robotics. In particular, the need for sensor networks and distributed sensing poses new scientific and technological challenges.  In addition to established measurement technology for geometric and kinematic data such as robot vision and navigation, there is a need for sensor capacity for physical quantities other than geometric or kinematic ones. In this lecture, we review examples of robotic work-space sensing and control and the current needs for new sensors measuring force, touch, texture, speed, and tool impact.  Several robotic assembly use cases would benefit from such new sensor technology. Also, we will compare conditions for sensor-rich and sensor-deprived robotic work spaces.
    One way to explore the benefits of exteroception is to start from sensor-deprived robotic work-space control. The traditional way of controlling an industrial robot is to program it to follow desired trajectories using position control. This approach is suitable as long as the accuracy of the robot and the calibration of the workcell is sufficiently precise. In robotic assembly these conditions are usually not fulfilled because of uncertainties, e.g., variability in involved parts and objects not gripped accurately. Using force control is one way to handle these difficulties. Here, a method of doing force control without a force sensor is evaluated. The method is based on detuning of the low-level joint control loops, and the force is estimated from the robot joint control error caused by contact forces. It is experimentally verified in a small part assembly task with a kinematically redundant robotic manipulator.


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