Neighborhood Preserving Hashing for Scalable Video Retrieval
Shuyan Li, Zhixiang Chen, Jiwen Lu, Xiu Li, Jie Zhou
Abstract
In this paper, we propose a Neighborhood Preserving Hashing (NPH) method for scalable video retrieval in an unsupervised manner. Unlike most existing deep video hashing methods which indiscriminately compress an entire video into a binary code, we embed the spatial-temporal neighborhood information into the encoding network such that the neighborhood-relevant visual content of a video can be preferentially encoded into a binary code under the guidance of the neighborhood information. Specifically, we propose a neighborhood attention mechanism which focuses on partial useful content of each input frame conditioned on the neighborhood information. We then integrate the neighborhood attention mechanism into an RNN-based reconstruction scheme to encourage the binary codes to capture the spatial-temporal structure in a video which is consistent with that in the neighborhood. As a consequence, the learned hashing functions can map similar videos to similar binary codes. Extensive experiments on three widely-used benchmark datasets validate the effectiveness of our proposed approach.
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Cited by top-tier papers9
- Contrastive Masked Autoencoders for Self-Supervised Video HashingYuting Wang, Jinpeng Wang, Bin Chen, Ziyun Zeng et al.AAAI 2023 · 29 citations
- Neighborhood-Adaptive Structure Augmented Metric LearningPandeng Li, Yan Li, Hongtao Xie, Lei ZhangAAAI 2022 · 29 citations
- Unsupervised Video Hashing with Multi-granularity Contextualization and Multi-structure PreservationYanbin Hao, Jingru Duan, Hao Zhang, Bin Zhu et al.ACM MM 2022 · 16 citations
- CHAIN: Exploring Global-Local Spatio-Temporal Information for Improved Self-Supervised Video HashingRukai Wei, Yu Liu, Jingkuan Song, Heng Cui et al.ACM MM 2023 · 15 citations
- HiHPQ: Hierarchical Hyperbolic Product Quantization for Unsupervised Image RetrievalZexuan Qiu, Jiahong Liu, Yankai Chen, Irwin KingAAAI 2024 · 14 citations
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