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Mitigating the Stability–Plasticity Trade-Off in Neural Networks via Shared Extractors in Class-Incremental Learning

Humans learn new tasks without forgetting, but neural networks suffer from catastrophic forgetting when trained sequentially. Dynamic expandable networks attempt to address this by assigning each task its own feature extractor and freezing previous ones to preserve past knowledge. While effective fo...

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Principais autores: Mingda Dong, Rui Li, Feng Liu
Formato: Artigo
Idioma:Inglês
Publicado em: MDPI AG 2025-10-01
coleção:Applied Sciences
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Acesso em linha:https://www.mdpi.com/2076-3417/15/19/10757
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