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Storing covariance with nonlinearly interacting neurons.

作者信息

Sejnowski T J

出版信息

J Math Biol. 1977 Oct 20;4(4):303-21. doi: 10.1007/BF00275079.

DOI:10.1007/BF00275079
PMID:925522
Abstract

A time-dependent, nonlinear model of neuronal interaction which was probabilistically analyzed in a previous article is shown here to be a natural generalization of the Hartline-Ratliff model of the Limulus retina. Although the primary physical variables in the model are the membrane potentials of neurons, the equations which govern the means and covariances of the membrane potentials are coupled through the average firing rates; as a consequence, the average firing rates control the selective storage and retrieval of covariance information. Motor learning in the cerebellar cortex is treated as a problem of covariance storage, and a predicition is made for the underlying synaptic plasticity: the change in synaptic strength between a parallel fiber and a Purkinje cell should be proportional to the covariance between discharges in the parallel fiber and the climbing fiber. Unlike previous proposals for synaptic plasticity, this prediction requires both facilitation and depression to occur (under different conditions) at the same synapse.

摘要

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本文引用的文献

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Inhibitory interaction of receptor units in the eye of Limulus.鲎眼中受体单元的抑制性相互作用。
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Maintained activity of cat retinal ganglion cells.猫视网膜神经节细胞的持续活动。
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Efficient inference of synaptic plasticity rule with Gaussian process regression.基于高斯过程回归的突触可塑性规则高效推理
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A model of head direction and landmark coding in complex environments.在复杂环境中进行头部方向和地标编码的模型。
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