Fast and Practical Neural Architecture Search
Jiequan Cui, Pengguang Chen, Ruiyu Li, Shu Liu, Xiaoyong Shen, Jiaya Jia
摘要
In this paper, we propose a fast and practical neural architecture search (FPNAS) framework for automatic network design. FPNAS aims to discover extremely efficient networks with less than 300M FLOPs. Different from previous NAS methods, our approach searches for the whole network architecture to guarantee block diversity instead of stacking a set of similar blocks repeatedly. We model the search process as a bi-level optimization problem and propose an approximation solution. On CIFAR-10, our approach is capable of design networks with comparable performance to state-of-the-arts while using orders of magnitude less computational resource with only 20 GPU hours. Experimental results on ImageNet and ADE20K datasets further demonstrate transferability of the searched networks.
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引用它的顶会 Paper13
- Parametric Contrastive LearningJiequan Cui, Zhisheng Zhong, Shu Liu, Bei Yu 等ICCV 2021 · 被引用 375 次
- Learnable Boundary Guided Adversarial TrainingJiequan Cui, Shu Liu, Liwei Wang, Jiaya JiaICCV 2021 · 被引用 152 次
- Decoupled Kullback-Leibler Divergence LossJiequan Cui, Zhuotao Tian, Zhisheng Zhong, Xiaojuan Qi 等NeurIPS 2024 · 被引用 119 次
- Manas: Mining Software Repositories to Assist AutoMLGiang Nguyen, Md Johirul Islam, Rangeet Pan, Hridesh RajanICSE 2022 · 被引用 15 次
- Non-Convex Bilevel Optimization with Time-Varying Objective FunctionsSen Lin, Daouda Sow, Kaiyi Ji, Yingbin Liang 等NeurIPS 2023 · 被引用 11 次
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