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A Robot Collision Avoidance Method Using Kinect and Global Vision

Haibin Wu, Jianfeng Huang, Xiaoning Yang, Jinhua Ye, Sumei He

发表年份
2017
引用次数
3
访问权限
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摘要

This paper introduces a robot collision avoidance method using Kinect and global vision to improve the industrial robot’s security. Global vision is installed above the robot, and a combination of the background-difference method and the Otsu algorithm are used. Human skeleton detection is then introduced to detect the location information of the human body. The collided objects are classified into nonhuman and human obstacle which is further categorized into the human head and non-head areas such as the arm. The Kalman filter is used to predict the human gesture. The human joints danger index is used to evaluate the risk level of the human on the basis of human body joints and robot’s motion information. Finally, a motion control strategy is adopted in view of obstacle categories and the human joint danger index. Results show that the proposed method can effectively improve robot’s security in real time.

关键词

Computer visionComputer scienceArtificial intelligenceRobotObstacleHuman–robot interactionCollision avoidanceJoint (building)Kalman filterCollision

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