BN-NAS: Neural Architecture Search with Batch Normalization

被引:19
作者
Chen, Boyu [1 ]
Li, Peixia [1 ]
Li, Baopu [2 ]
Lin, Chen [3 ]
Li, Chuming [1 ,4 ]
Sun, Ming [4 ]
Yan, Junjie [4 ]
Ouyang, Wanli [1 ]
机构
[1] Univ Sydney, Sydney, NSW, Australia
[2] BAIDU USA LLC, Sunnyvale, CA USA
[3] Univ Oxford, Oxford, England
[4] SenseTime Grp Ltd, Hong Kong, Peoples R China
来源
2021 IEEE/CVF INTERNATIONAL CONFERENCE ON COMPUTER VISION (ICCV 2021) | 2021年
基金
澳大利亚研究理事会;
关键词
D O I
10.1109/ICCV48922.2021.00037
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
We present BN-NAS, neural architecture search with Batch Normalization (BN-NAS), to accelerate neural architecture search (NAS). BN-NAS can significantly reduce the time required by model training and evaluation in NAS. Specifically, for fast evaluation, we propose a BN-based indicator for predicting subnet performance at a very early training stage. The BN-based indicator further facilitates us to improve the training efficiency by only training the BN parameters during the supernet training. This is based on our observation that training the whole supernet is not necessary while training only BN parameters accelerates network convergence for network architecture search. Extensive experiments show that our method can significantly shorten the time of training supernet by more than 10 times and shorten the time of evaluating subnets by more than 600,000 times without losing accuracy. The source codes are available at https://github.com/bychen515/BNNAS.
引用
收藏
页码:307 / 316
页数:10
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