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Noninvasive Electroencephalogram Based Control of a Robotic Arm for Reach and Grasp Tasks
by
Olsoe, Jaron
, Zhang, Shuying
, Bekyo, Angeliki
, He, Bin
, Baxter, Bryan
, Meng, Jianjun
in
631/378/2632/2634
/ 639/166/985
/ Brain
/ Computer applications
/ EEG
/ Helicopters
/ Humanities and Social Sciences
/ Implants
/ Limbs
/ multidisciplinary
/ Multinational space ventures
/ Robotics
/ Science
2016
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Noninvasive Electroencephalogram Based Control of a Robotic Arm for Reach and Grasp Tasks
by
Olsoe, Jaron
, Zhang, Shuying
, Bekyo, Angeliki
, He, Bin
, Baxter, Bryan
, Meng, Jianjun
in
631/378/2632/2634
/ 639/166/985
/ Brain
/ Computer applications
/ EEG
/ Helicopters
/ Humanities and Social Sciences
/ Implants
/ Limbs
/ multidisciplinary
/ Multinational space ventures
/ Robotics
/ Science
2016
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Do you wish to request the book?
Noninvasive Electroencephalogram Based Control of a Robotic Arm for Reach and Grasp Tasks
by
Olsoe, Jaron
, Zhang, Shuying
, Bekyo, Angeliki
, He, Bin
, Baxter, Bryan
, Meng, Jianjun
in
631/378/2632/2634
/ 639/166/985
/ Brain
/ Computer applications
/ EEG
/ Helicopters
/ Humanities and Social Sciences
/ Implants
/ Limbs
/ multidisciplinary
/ Multinational space ventures
/ Robotics
/ Science
2016
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Noninvasive Electroencephalogram Based Control of a Robotic Arm for Reach and Grasp Tasks
Journal Article
Noninvasive Electroencephalogram Based Control of a Robotic Arm for Reach and Grasp Tasks
2016
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Overview
Brain-computer interface (BCI) technologies aim to provide a bridge between the human brain and external devices. Prior research using non-invasive BCI to control virtual objects, such as computer cursors and virtual helicopters, and real-world objects, such as wheelchairs and quadcopters, has demonstrated the promise of BCI technologies. However, controlling a robotic arm to complete reach-and-grasp tasks efficiently using non-invasive BCI has yet to be shown. In this study, we found that a group of 13 human subjects could willingly modulate brain activity to control a robotic arm with high accuracy for performing tasks requiring multiple degrees of freedom by combination of two sequential low dimensional controls. Subjects were able to effectively control reaching of the robotic arm through modulation of their brain rhythms within the span of only a few training sessions and maintained the ability to control the robotic arm over multiple months. Our results demonstrate the viability of human operation of prosthetic limbs using non-invasive BCI technology.
Publisher
Nature Publishing Group UK,Nature Publishing Group
Subject
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