Competition Through Selective Inhibitory Synchrony
Abstract
Models of cortical neuronal circuits commonly depend on inhibitory feedback to control gain, provide signal normalization, and selectively amplify signals using winner-take-all (WTA) dynamics. Such models generally assume that excitatory and inhibitory neurons are able to interact easily because their axons and dendrites are colocalized in the same small volume. However, quantitative neuroanatomical studies of the dimensions of axonal and dendritic trees of neurons in the neocortex show that this colocalization assumption is not valid. In this letter, we describe a simple modification to the WTA circuit design that permits the effects of distributed inhibitory neurons to be coupled through synchronization, and so allows a single WTA to be distributed widely in cortical space, well beyond the arborization of any single inhibitory neuron and even across different cortical areas. We prove by nonlinear contraction analysis and demonstrate by simulation that distributed WTA subsystems combined by such inhibitory synchrony are inherently stable. We show analytically that synchronization is substantially faster than winner selection. This circuit mechanism allows networks of independent WTAs to fully or partially compete with other.
Additional Information
© 2012 Massachusetts Institute of Technology. Received October 3, 2011; accepted January 6, 2012. Posted Online June 12, 2012.Attached Files
Published - NECO_a_00304.pdf
Files
NECO_a_00304.pdf
Additional details
Identifiers
- Eprint ID
- 102392
- Resolver ID
- CaltechAUTHORS:20200407-133715842
Related works
- Describes
- 10.5167/uzh-75352 (DOI)
Dates
- Created
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2020-04-07Created from EPrint's datestamp field
- Updated
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2021-06-03Created from EPrint's last_modified field