DFEF: Diversify feature enhancement and fusion for online knowledge distillation
Xingzhu Liang,
Jian Zhang,
Erhu Liu
et al.
Abstract:Traditional knowledge distillation relies on high‐capacity teacher models to supervise the training of compact student networks. To avoid the computational resource costs associated with pretraining high‐capacity teacher models, teacher‐free online knowledge distillation methods have achieved satisfactory performance. Among these methods, feature fusion methods have effectively alleviated the limitations of training without the strong guidance of a powerful teacher model. However, existing feature fusion metho… Show more
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