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A Vision-Driven Collaborative Robotic Grasping System Tele-Operated by Surface Electromyography

Andrés Úbeda, Brayan S. Zapata-Impata, Santiago Timoteo Puente Méndez, Pablo Gil, Francisco A. Candelas-Herías, Fernando Torres

发表年份
2018
引用次数
8
访问权限
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摘要

This paper presents a system that combines computer vision and surface electromyography techniques to perform grasping tasks with a robotic hand. In order to achieve a reliable grasping action, the vision-driven system is used to compute pre-grasping poses of the robotic system based on the analysis of tridimensional object features. Then, the human operator can correct the pre-grasping pose of the robot using surface electromyographic signals from the forearm during wrist flexion and extension. Weak wrist flexions and extensions allow a fine adjustment of the robotic system to grasp the object and finally, when the operator considers that the grasping position is optimal, a strong flexion is performed to initiate the grasping of the object. The system has been tested with several subjects to check its performance showing a grasping accuracy of around 95% of the attempted grasps which increases in more than a 13% the grasping accuracy of previous experiments in which electromyographic control was not implemented.

关键词

GRASPComputer visionArtificial intelligenceRobotic handElectromyographyComputer scienceObject (grammar)WristRobotForearm

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