Multi-level feature learning with attention for person re-identification

被引:0
作者
Suncheng Xiang
Yuzhuo Fu
Hao Chen
Wei Ran
Ting Liu
机构
[1] Shanghai Jiao Tong University,School of Electronic Information and Electrical Engineering
来源
Multimedia Tools and Applications | 2020年 / 79卷
关键词
Re-identification; Multi-branch; Semantically aligned region; Self-attention;
D O I
暂无
中图分类号
学科分类号
摘要
Person re-identification (re-ID) aims to match a specific person in a large gallery with different cameras and locations. Previous part-based methods mainly focus on part-level features with uniform partition, which increases learning ability for discriminative feature but not efficient or robust to scenarios with large variances. To address this problem, in this paper, we propose a novel feature fusion strategy based on traditional convolutional neural network. Then, a multi-branch deeper feature fusion network architecture is designed to perform discriminative learning for three semantically aligned region. Based on it, a novel self-attention mechanism is employed to softly assign corresponding weights to the semantic aligned feature during back-propagation. Comprehensive experiments have been conducted on several large-scale benchmark datasets, which demonstrates that proposed approach yields consistent and competitive re-ID accuracy compared with current single-domain re-ID methods.
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页码:32079 / 32093
页数:14
相关论文
共 8 条
[1]  
Navaneet K(2019)Operator-in-the-loop deep sequential multi-camera feature fusion for person re-identification IEEE Transactions on Information Forensics and Security 15 2375-2385
[2]  
Sarvadevabhatla RK(2018)Pedestrian alignment network for large-scale person re-identification IEEE Transactions on Circuits and Systems for Video Technology 29 3037-3045
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