Literature DB >> 24235276

Simultaneous neural control of simple reaching and grasping with the modular prosthetic limb using intracranial EEG.

Matthew S Fifer, Guy Hotson, Brock A Wester, David P McMullen, Yujing Wang, Matthew S Johannes, Kapil D Katyal, John B Helder, Matthew P Para, R Jacob Vogelstein, William S Anderson, Nitish V Thakor, Nathan E Crone.   

Abstract

Intracranial electroencephalographic (iEEG) signals from two human subjects were used to achieve simultaneous neural control of reaching and grasping movements with the Johns Hopkins University Applied Physics Lab (JHU/APL) Modular Prosthetic Limb (MPL), a dexterous robotic prosthetic arm. We performed functional mapping of high gamma activity while the subject made reaching and grasping movements to identify task-selective electrodes. Independent, online control of reaching and grasping was then achieved using high gamma activity from a small subset of electrodes with a model trained on short blocks of reaching and grasping with no further adaptation. Classification accuracy did not decline (p < 0.05, one-way ANOVA) over three blocks of testing in either subject. Mean classification accuracy during independently executed overt reach and grasp movements for (Subject 1, Subject 2) were (0.85, 0.81) and (0.80, 0.96), respectively, and during simultaneous execution they were (0.83, 0.88) and (0.58, 0.88), respectively. Our models leveraged knowledge of the subject's individual functional neuroanatomy for reaching and grasping movements, allowing rapid acquisition of control in a time-sensitive clinical setting. We demonstrate the potential feasibility of verifying functionally meaningful iEEG-based control of the MPL prior to chronic implantation, during which additional capabilities of the MPL might be exploited with further training.

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Mesh:

Year:  2013        PMID: 24235276      PMCID: PMC4030429          DOI: 10.1109/TNSRE.2013.2286955

Source DB:  PubMed          Journal:  IEEE Trans Neural Syst Rehabil Eng        ISSN: 1534-4320            Impact factor:   3.802


  41 in total

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6.  Cortical adaptation to a chronic micro-electrocorticographic brain computer interface.

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  14 in total

1.  Decoding Native Cortical Representations for Flexion and Extension at Upper Limb Joints Using Electrocorticography.

Authors:  Tessy M Thomas; Daniel N Candrea; Matthew S Fifer; David P McMullen; William S Anderson; Nitish V Thakor; Nathan E Crone
Journal:  IEEE Trans Neural Syst Rehabil Eng       Date:  2019-01-07       Impact factor: 3.802

2.  Demonstration of a semi-autonomous hybrid brain-machine interface using human intracranial EEG, eye tracking, and computer vision to control a robotic upper limb prosthetic.

Authors:  David P McMullen; Guy Hotson; Kapil D Katyal; Brock A Wester; Matthew S Fifer; Timothy G McGee; Andrew Harris; Matthew S Johannes; R Jacob Vogelstein; Alan D Ravitz; William S Anderson; Nitish V Thakor; Nathan E Crone
Journal:  IEEE Trans Neural Syst Rehabil Eng       Date:  2013-12-12       Impact factor: 3.802

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5.  Individual finger control of a modular prosthetic limb using high-density electrocorticography in a human subject.

Authors:  Guy Hotson; David P McMullen; Matthew S Fifer; Matthew S Johannes; Kapil D Katyal; Matthew P Para; Robert Armiger; William S Anderson; Nitish V Thakor; Brock A Wester; Nathan E Crone
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6.  The Dynamics of Language Network Interactions in Lexical Selection: An Intracranial EEG Study.

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8.  Coarse electrocorticographic decoding of ipsilateral reach in patients with brain lesions.

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