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Robotic arm control using hybrid brain-machine interface and augmented reality feedback

机译:使用混合脑机接口和增强现实反馈的机械臂控制

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Brain-machine interface (BMI) can be used to control robotic arm to assist paralysis people improving their quality of life. However process control of objects grasping is still a complex task for BMI users. High efficiency and accuracy is hard to achieve in objects grasping process even after extensive training. An important reason is lack of sufficient feedback information for performing the closed-loop control. In this study, we describe a method of augmented reality (AR) guiding assistance to provide extra feedback information to the user for closed-loop control. A hybrid BMI based system with AR feedback is proposed to evaluate the performance of our method in objects grasping task using robotic arm. Reaching and releasing tasks are completed by the robotic arm automatically. For the grasping task controlled by the user, AR is used to enrich the normal visual information during the grasping process to provide the BMI user augmented feedback information about the gripper status in real time. The feasibility of the proposed system both in open-loop (visual inspection) and closed-loop (AR feedback) are compared. According to our experimental results obtained from 5 subjects, the time used for controlling the robotic arm to grasp objects with AR feedback reduces more than 5s and the error rate of the gripper aperture decreases approximately 20% compared to those of grasping with normal visual inspection only. The results reveal that the BMI user can benefit from the information provided by AR interface in the grasping task.
机译:脑机接口(BMI)可用于控制机械臂,以帮助瘫痪者改善生活质量。但是,对于BMI用户而言,对象抓取的过程控制仍然是一项复杂的任务。即使经过大量培训,在物体抓握过程中也难以实现高效率和准确性。一个重要的原因是缺乏足够的反馈信息来执行闭环控制。在这项研究中,我们描述了一种增强现实(AR)指导辅助方法,可为用户提供额外的反馈信息以进行闭环控制。提出了一种基于混合BMI的AR反馈系统,以评估我们的方法在使用机械臂的物体抓取任务中的性能。到达和释放任务由机械臂自动完成。对于用户控制的抓取任务,AR用于在抓取过程中丰富正常的视觉信息,以实时向BMI用户提供有关抓取器状态的增强反馈信息。比较了所提出系统在开环(视觉检查)和闭环(AR反馈)方面的可行性。根据我们从5个对象获得的实验结果,与使用常规视觉检查进行抓取相比,用于控制机械臂以AR反馈抓取对象的时间减少了超过5s,并且抓取器孔的错误率降低了约20%只要。结果表明,在掌握任务中,BMI用户可以从AR接口提供的信息中受益。

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