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Learning by neural reassociation
by
Oby, Emily R
, Quick, Kristin M
, Sadtler, Patrick T
, Ryu, Stephen I
, Chase, Steven M
, Tyler-Kabara, Elizabeth C
, Golub, Matthew D
, Yu, Byron M
, Batista, Aaron P
in
Activity patterns
/ Animal behavior
/ Brain
/ Brain mapping
/ Cortex (motor)
/ Human-computer interface
/ Learning
/ Population
/ Population studies
/ Reassociation
2018
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Learning by neural reassociation
by
Oby, Emily R
, Quick, Kristin M
, Sadtler, Patrick T
, Ryu, Stephen I
, Chase, Steven M
, Tyler-Kabara, Elizabeth C
, Golub, Matthew D
, Yu, Byron M
, Batista, Aaron P
in
Activity patterns
/ Animal behavior
/ Brain
/ Brain mapping
/ Cortex (motor)
/ Human-computer interface
/ Learning
/ Population
/ Population studies
/ Reassociation
2018
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Do you wish to request the book?
Learning by neural reassociation
by
Oby, Emily R
, Quick, Kristin M
, Sadtler, Patrick T
, Ryu, Stephen I
, Chase, Steven M
, Tyler-Kabara, Elizabeth C
, Golub, Matthew D
, Yu, Byron M
, Batista, Aaron P
in
Activity patterns
/ Animal behavior
/ Brain
/ Brain mapping
/ Cortex (motor)
/ Human-computer interface
/ Learning
/ Population
/ Population studies
/ Reassociation
2018
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Journal Article
Learning by neural reassociation
2018
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Overview
Behavior is driven by coordinated activity across a population of neurons. Learning requires the brain to change the neural population activity produced to achieve a given behavioral goal. How does population activity reorganize during learning? We studied intracortical population activity in the primary motor cortex of rhesus macaques during short-term learning in a brain–computer interface (BCI) task. In a BCI, the mapping between neural activity and behavior is exactly known, enabling us to rigorously define hypotheses about neural reorganization during learning. We found that changes in population activity followed a suboptimal neural strategy of reassociation: animals relied on a fixed repertoire of activity patterns and associated those patterns with different movements after learning. These results indicate that the activity patterns that a neural population can generate are even more constrained than previously thought and might explain why it is often difficult to quickly learn to a high level of proficiency.
Publisher
Nature Publishing Group
Subject
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