Attenuating Catastrophic Forgetting by Joint Contrastive and Incremental Learning

被引:3
作者
Ferdinand, Quentin [1 ,2 ]
Clement, Benoit [2 ]
Oliveau, Quentin [1 ]
Le Chenadec, Gilles [2 ]
Papadakis, Panagiotis [3 ]
机构
[1] Naval Grp Res, Cherbourg En Cotentin, France
[2] ENSTA Bretagne, Lab STICC UMR 6285, Brest, France
[3] IMT Atlantique, Lab STICC UMR 6285, Brest, France
来源
2022 IEEE/CVF CONFERENCE ON COMPUTER VISION AND PATTERN RECOGNITION WORKSHOPS, CVPRW 2022 | 2022年
关键词
D O I
10.1109/CVPRW56347.2022.00423
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
In class incremental learning, discriminative models are trained to classify images while adapting to new instances and classes incrementally. Training a model to adapt to new classes without total access to previous class data, however, leads to the known problem of catastrophic forgetting of the previously learnt classes. To alleviate this problem, we show how we can build upon recent progress on contrastive learning methods. In particular, we develop an incremental learning approach for deep neural networks operating both at classification and representation level which alleviates forgetting and learns more general features for data classification. Experiments performed on several datasets demonstrate the superiority of the proposed method with respect to well known state-of-the-art methods.
引用
收藏
页码:3781 / 3788
页数:8
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