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2019 | OriginalPaper | Chapter

Discriminative Deep Attention-Aware Hashing for Face Image Retrieval

Authors : Zhi Xiong, Bo Li, Xiaoyan Gu, Wen Gu, Weiping Wang

Published in: PRICAI 2019: Trends in Artificial Intelligence

Publisher: Springer International Publishing

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Abstract

Although the power of hashing methods has been proved in image retrieval, they cannot effectively extract discriminative features for face image retrieval as the discriminative differences in face regions are subtle and the background information interferes with the feature expression. To solve this problem, we propose an end-to-end deep hashing method with attention mechanisms to learn discriminative hash codes. Specifically, a face spatial network is designed to enhance the discrimination of face features from the spatial aspect. With a specially designed face spatial loss, it can automatically mine differentiated facial regions, and reduce the interference of background information. Furthermore, an attention-aware hash network, in which facial features could be enhanced by fusing strategy and channel attention module, is designed to learn compact and discriminative hash codes. Experimental results on two widely used datasets demonstrate the inspiring performance over several state-of-the-art hashing methods.

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Metadata
Title
Discriminative Deep Attention-Aware Hashing for Face Image Retrieval
Authors
Zhi Xiong
Bo Li
Xiaoyan Gu
Wen Gu
Weiping Wang
Copyright Year
2019
DOI
https://doi.org/10.1007/978-3-030-29908-8_20

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