CAE-DFKD: Bridging the Transferability Gap in Data-Free Knowledge Distillation
Zherui Zhang, Changwei Wang, Rongtao Xu, Wenhao Xu, Shibiao Xu, Yu Zhang, Jie Zhou, Li Guo
摘要
Data-Free Knowledge Distillation (DFKD) enables the knowledge transfer from the given pre-trained teacher network to the target student model without access to the real training data. Existing DFKD methods focus primarily on improving image recognition performance on associated datasets, often neglecting the crucial aspect of the transferability of learned representations. In this paper, we propose Category-Aware Embedding Data-Free Knowledge Distillation (CAE-DFKD), which addresses at the embedding level the limitations of previous rely on image-level methods to improve model generalization but fail when directly applied to DFKD. The superiority and flexibility of CAE-DFKD are extensively evaluated, including: i.) Significant efficiency advantages resulting from altering the generator training paradigm; ii.) Competitive performance with existing DFKD state-of-the-art methods on image recognition tasks; iii.) Remarkable transferability of data-free learned representations demonstrated in downstream tasks.
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它引用的顶会 Paper17
- Data-Free Learning of Student NetworksHanting Chen, Yunhe Wang, Chang Xu, Zhaohui Yang 等ICCV 2019 · 被引用 427 次
- Dataset Distillation by Matching Training TrajectoriesGeorge Cazenavette, Tongzhou Wang, Antonio Torralba, Alexei A. Efros 等CVPR 2022 · 被引用 198 次
- Hard Sample Aware Network for Contrastive Deep Graph ClusteringYue Liu, Xihong Yang, Sihang Zhou, Xinwang Liu 等AAAI 2023 · 被引用 175 次
- Up to 100x Faster Data-Free Knowledge DistillationGongfan Fang, Kanya Mo, Xinchao Wang, Jie Song 等AAAI 2022 · 被引用 103 次
- CrossKD: Cross-Head Knowledge Distillation for Object DetectionJiabao Wang, Yuming Chen, Zhaohui Zheng, Xiang Li 等CVPR 2024 · 被引用 93 次
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