Brain-Machine Interface for Reaching: Accounting for Target Size, Multiple Motor Plans, and Bimanual Coordination
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Summary
An abstract of a dissertation submitted in partial fulfillment of the requirements for the degree of Doctor of Philosophy in the Department of Biomedical Engineering in the Graduate School of Duke University 2014 is presented.
- Type
- dissertation
- Published
- 2014-01-01
- Cited by
- 0
- References
- 288
- Access
- Open access
- OpenAlex
- https://openalex.org/W43489565
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:41703902
Keywords
Motor coordination, Interface (matter), Brain–computer interface, Computer science, Accounting
References
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- From intention to action: motor cortex and the control of reaching movements.
- Measuring Continuous Real-World Upper-Limb Activity.
- Action-Oriented Spatial Review Reference Frames in Cortex
- Brain-Machine Interface Enables Bimanual Arm Movements in Monkeys
- Motor Areas of the Cerebral Cortex
- Activity of pyramidal tract neurons during postural fixation.
- Temporal encoding of movement kinematics in the discharge of primate primary motor and premotor neurons.
- Motor cortical representation of speed and direction during reaching.
- Real-time control of a robot arm using simultaneously recorded neurons in the motor cortex
- Inconvenient Truths about neural processing in primary motor cortex
- Effects of target height and width on 2D pointing movement duration and kinematics.
- Neurophysiological mechanisms underlying the understanding and imitation of action
- Encoding of speed and direction of movement in the human supplementary motor area
- Cortical Representation of Bimanual Movements
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