JOURNAL ARTICLE

Adaptive Shortcut Debiasing for Online Continual Learning

Doyoung KimDongmin ParkYooju ShinJihwan BangHwanjun SongJae-Gil Lee

Year: 2024 Journal:   Proceedings of the AAAI Conference on Artificial Intelligence Vol: 38 (12)Pages: 13122-13131   Publisher: Association for the Advancement of Artificial Intelligence

Abstract

We propose a novel framework DropTop that suppresses the shortcut bias in online continual learning (OCL) while being adaptive to the varying degree of the shortcut bias incurred by continuously changing environment. By the observed high-attention property of the shortcut bias, highly-activated features are considered candidates for debiasing. More importantly, resolving the limitation of the online environment where prior knowledge and auxiliary data are not ready, two novel techniques---feature map fusion and adaptive intensity shifting---enable us to automatically determine the appropriate level and proportion of the candidate shortcut features to be dropped. Extensive experiments on five benchmark datasets demonstrate that, when combined with various OCL algorithms, DropTop increases the average accuracy by up to 10.4% and decreases the forgetting by up to 63.2%.

Keywords:
Debiasing Computer science Online learning Artificial intelligence Psychology World Wide Web Cognitive science

Metrics

2
Cited By
1.71
FWCI (Field Weighted Citation Impact)
58
Refs
0.82
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Educational Technology and Assessment
Physical Sciences →  Computer Science →  Information Systems
Online Learning and Analytics
Physical Sciences →  Computer Science →  Computer Science Applications
Innovative Teaching Methods
Social Sciences →  Social Sciences →  Education

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