Distilling Siamese Trackers with Attention Mask

Han Sun, Yongqiang Bai, Wenbo Zhang

科研成果: 书/报告/会议事项章节会议稿件同行评审

2 引用 (Scopus)

摘要

In recent years, the introduction of Siamese network has brought new vitality to the object tracking community. However, high-performance Siamese trackers cannot run at a real-time speed on mobile devices due to their complex and huge model. Knowledge distillation is a common and effective model compression method, but it is difficult to be applied to the challenging task like object tracking. We find out the fundamental cause is that the imbalance between the foreground and background in the object tracking task, which aggravates the problem of insufficient feature extraction ability of small backbone. Therefore, we propose the attention mask distillation (AMD) to help the student tracker focus on the foreground area faster and more accurately. The attention mask can be easily obtained from the feature maps and brings fine-granularity to the traditional binary mask. The experimental results on OTB 100 and VOT20 18 show that our method enables the student tracker perform as well as the teacher tracker. At the same time, it's able to run on the CPU at a hyper-real-time of 66 fps and achieves nearly 9 times model compression ratio. Such low computational and storage costs make it possible to deploy high-performance trackers on resource-constrained platforms.

源语言英语
主期刊名Proceedings of the 41st Chinese Control Conference, CCC 2022
编辑Zhijun Li, Jian Sun
出版商IEEE Computer Society
6622-6627
页数6
ISBN(电子版)9789887581536
DOI
出版状态已出版 - 2022
活动41st Chinese Control Conference, CCC 2022 - Hefei, 中国
期限: 25 7月 202227 7月 2022

出版系列

姓名Chinese Control Conference, CCC
2022-July
ISSN(印刷版)1934-1768
ISSN(电子版)2161-2927

会议

会议41st Chinese Control Conference, CCC 2022
国家/地区中国
Hefei
时期25/07/2227/07/22

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引用此

Sun, H., Bai, Y., & Zhang, W. (2022). Distilling Siamese Trackers with Attention Mask. 在 Z. Li, & J. Sun (编辑), Proceedings of the 41st Chinese Control Conference, CCC 2022 (页码 6622-6627). (Chinese Control Conference, CCC; 卷 2022-July). IEEE Computer Society. https://doi.org/10.23919/CCC55666.2022.9902186