Enabling On-Device Self-Supervised Contrastive Learning with Selective Data Contrast
Yawen Wu, Zhepeng Wang, Dewen Zeng, Yiyu Shi, Jingtong Hu
摘要
After a model is deployed on edge devices, it is desirable for these devices to learn from unlabeled data to continuously improve accuracy. Contrastive learning has demonstrated its great potential in learning from unlabeled data. However, the online input data are usually none independent and identically distributed (non-iid) and edge devices’ storages are usually too limited to store enough representative data from different data classes. We propose a framework to automatically select the most representative data from the unlabeled input stream, which only requires a small data buffer for dynamic learning. Experiments show that accuracy and learning speed are greatly improved.
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引用它的顶会 Paper6
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它引用的顶会 Paper6
- A Simple Framework for Contrastive Learning of Visual RepresentationsTing Chen, Simon Kornblith, Mohammad Norouzi, Geoffrey E. HintonICML 2020 · 被引用 24,064 次
- Invariant Information Clustering for Unsupervised Image Classification and SegmentationXu Ji, Andrea Vedaldi, João F. HenriquesICCV 2019 · 被引用 956 次
- Coresets via Bilevel Optimization for Continual Learning and StreamingZalán Borsos, Mojmir Mutny, Andreas KrauseNeurIPS 2020 · 被引用 320 次
- Self-supervised learning through the eyes of a childA. Emin Orhan, Vaibhav V. Gupta, Brenden M. LakeNeurIPS 2020 · 被引用 119 次
- Intermittent Inference with Nonuniformly Compressed Multi-Exit Neural Network for Energy Harvesting Powered DevicesYawen Wu, Zhepeng Wang, Zhenge Jia, Yiyu Shi 等DAC 2020 · 被引用 41 次
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