由 EMGP-VH 增强的双边远程操作战略,用于现场线路维护机器人

IF 3.5 3区 计算机科学 Q2 COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE IEEE Transactions on Human-Machine Systems Pub Date : 2024-06-26 DOI:10.1109/THMS.2024.3412910
Shaodong Li;Peiyuan Gao;Yongzheng Chen
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引用次数: 0

摘要

在机器人辅助带电线路维护中,双边远程操作仍然是协助操作员完成危险任务的一种流行而有效的方法。尤其是架空电力线下的远程操作,对安全操作和远程呈现的要求更高。在本文中,我们提出了一种基于视觉引导、触觉约束和混合现实(MR)增强的视觉-触觉双边远程操作策略,即 EMGP-VH。据我们所知,电磁场首次应用于现场线路维护中的远程操作路径规划。在视觉引导中,电磁电势场被集成到 RRT* 中,以计算低能量路径。同时,根据管状虚拟夹具计算实时触觉约束。磁共振增强也是平台构建和视觉引导中不可或缺的一部分。我们的方案在模拟和实际实验中分别使用了五种不同的场景和两种最先进的方法,通过七种客观性能和三种主观问卷进行了广泛的比较。进一步分析了 EMGP-RRT* 的功能和触觉约束的有效性。结果表明,EMGP-RRT* 在搜索效率和安全性能方面都有显著提高;而所提出的系统(EMGP-VH)在改善远程呈现和确保现场线路维护期间的安全操作方面做出了重大贡献,使操作时间减少了 30%,轨迹偏移减少了 60%。
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A Bilateral Teleoperation Strategy Augmented by EMGP-VH for Live-Line Maintenance Robot
In robot-assisted live-line maintenance, bilateral teleoperation is still a popular and effective approach in assisting operators to accomplish hazards tasks. Particularly, teleoperation under overhead power lines attach greater expectation on safe operation and telepresence. In this article, we propose a visual-haptic bilateral teleoperation strategy, i.e., EMGP-VH , based on visual guidance, haptic constraint and mixed reality (MR) augmentation. To the best of our knowledge, electromagnetic field is first applied to serve the path planning of teleoperation in live-line maintenance. In visual guidance, EMG-potential fields are integrated into RRT* to calculate a low-energy path. At the same time, real-time haptic constraint is calculated based on a tube virtual fixture. MR augmentation also works as an indispensable part in both the platform construction and visual guidance. Our proposal has been extensively compared using seven objective performances and three subjective questionnaires both in simulation and real-world experiment with five different scenes and two approaches state-of-the-art, respectively. Functionality of EMGP-RRT* and effectiveness of haptic constraint are further analyzed. Results show that EMGP-RRT* has significant improvements both in searching efficiency and safety performances; and the proposed system ( EMGP-VH ) significantly contributes to improving telepresence and ensuring safe operations during live-line maintenance, resulting in a 30% reduction in operation time and a 60% decrease in trajectory offset.
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来源期刊
IEEE Transactions on Human-Machine Systems
IEEE Transactions on Human-Machine Systems COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE-COMPUTER SCIENCE, CYBERNETICS
CiteScore
7.10
自引率
11.10%
发文量
136
期刊介绍: The scope of the IEEE Transactions on Human-Machine Systems includes the fields of human machine systems. It covers human systems and human organizational interactions including cognitive ergonomics, system test and evaluation, and human information processing concerns in systems and organizations.
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Table of Contents Present a World of Opportunity IEEE Systems, Man, and Cybernetics Society Information IEEE Transactions on Human-Machine Systems Information for Authors TechRxiv: Share Your Preprint Research with the World!
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