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Self-backpropagation of synaptic modifications elevates the efficiency of spiking and artificial neural networks.


ABSTRACT: Many synaptic plasticity rules found in natural circuits have not been incorporated into artificial neural networks (ANNs). We showed that incorporating a nonlocal feature of synaptic plasticity found in natural neural networks, whereby synaptic modification at output synapses of a neuron backpropagates to its input synapses made by upstream neurons, markedly reduced the computational cost without affecting the accuracy of spiking neural networks (SNNs) and ANNs in supervised learning for three benchmark tasks. For SNNs, synaptic modification at output neurons generated by spike timing–dependent plasticity was allowed to self-propagate to limited upstream synapses. For ANNs, modified synaptic weights via conventional backpropagation algorithm at output neurons self-backpropagated to limited upstream synapses. Such self-propagating plasticity may produce coordinated synaptic modifications across neuronal layers that reduce computational cost.

SUBMITTER: Zhang T 

PROVIDER: S-EPMC8528419 | biostudies-literature | 2021 Oct

REPOSITORIES: biostudies-literature

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Self-backpropagation of synaptic modifications elevates the efficiency of spiking and artificial neural networks.

Zhang Tielin T   Cheng Xiang X   Jia Shuncheng S   Poo Mu-Ming MM   Zeng Yi Y   Xu Bo B  

Science advances 20211020 43


Many synaptic plasticity rules found in natural circuits have not been incorporated into artificial neural networks (ANNs). We showed that incorporating a nonlocal feature of synaptic plasticity found in natural neural networks, whereby synaptic modification at output synapses of a neuron backpropagates to its input synapses made by upstream neurons, markedly reduced the computational cost without affecting the accuracy of spiking neural networks (SNNs) and ANNs in supervised learning for three  ...[more]

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