Neurally controlled robotic arm, reach and grasp (2012)
Device
No device entry covers this hardware yet. The spec card below lists what the source says.
Lab or organization
Neurally controlled robotic arm, reach and grasp (2012)
One-line verdict: The step from moving a cursor to moving a physical arm in space, done with a small sample of motor cortex neurons and years after injury.
Quick tags: Recording · Intracortical · Human · Nature, 16 May 2012
Overview
What it is: A neural interface system in which two people with long-standing tetraplegia controlled a robotic arm to perform three-dimensional reach and grasp movements. The paper’s title is “Reach and grasp by people with tetraplegia using a neurally controlled robotic arm.”
Signal source: A small, local population of motor cortex (MI) neurons recorded from a 96-channel microelectrode array. Participants controlled the arm and hand over a broad space without explicit training.
Highlight: One participant, implanted with the sensor 5 years earlier, used a robotic arm to drink coffee from a bottle.
Limits stated by the authors: The robotic reach and grasp actions were not as fast or accurate as those of an able-bodied person. The result demonstrates feasibility of recreating useful multidimensional control of complex devices from a small sample of neural signals, years after injury.
Earlier work: The authors say they previously showed that people with long-standing tetraplegia can use a neural interface system to move and click a computer cursor and to control physical devices, and note that able-bodied monkeys had used one to control a robotic arm. The BrainGate 2006 pilot entry covers an earlier 96-microelectrode human study.
Spec Card Grid
Identity
- Paper: “Reach and grasp by people with tetraplegia using a neurally controlled robotic arm,” Nature, 16 May 2012
- Participants: two people with long-standing tetraplegia
Architecture
- Sensor: 96-channel microelectrode array, motor cortex (MI)
- Output: robotic arm and hand, three-dimensional reach and grasp
Evidence and limits
- Not covered here: array dimensions, the robotic arm model and success rates; no 3D model yet
References
- Reach and grasp by people with tetraplegia using a neurally controlled robotic arm. Nature, 16 May 2012. https://www.nature.com/articles/nature11076