Towards interpretable deep local learning with successive gradient reconciliation
Relieving the reliance of neural network training on a global back-propagation (BP) has emerged as a notable research topic due to the biological implausibility and huge memory consumption caused by BP. Among the existing solutions, local learning optimizes gradient-isolated modules of a neural netw...
Autors principals: | , , , , , , |
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Format: | Conference item |
Idioma: | English |
Publicat: |
PMLR
2024
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