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Online Cross-modal Hashing With Dynamic Prototype

delete2024-06-13
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OA
AI
X
X. Kang *
X
Xingbo Liu
W
Wen Xue
X
Xiushan Nie
尹义龙 cover
尹义龙 (Yilong Yin)
DOI:10.1145/3665249delete
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Abstract

Abstract

En 中文
Online cross-modal hashing has received increasing attention due to its efficiency and effectiveness in handling cross-modal streaming data retrieval. Despite the promising performance, these methods mainly focus on the supervised learning paradigm, demanding expensive and laborious work to obtain clean annotated data. Existing unsupervised online hashing methods mostly struggle to construct instructive semantic correlations among data chunks, resulting in the forgetting of accumulated data distribution. To this end, we propose a Dynamic Prototype-based Online Cross-modal Hashing method, called DPOCH. Based on the pre-learned reliable common representations, DPOCH generates prototypes incrementally as sketches of accumulated data and updates them dynamically for adapting streaming data. Thereafter, the prototype-based semantic embedding and similarity graphs are designed to promote stability and generalization of the hashing process, thereby obtaining globally adaptive hash codes and hash functions. Experimental results on bench- marked datasets demonstrate that the proposed DPOCH outperforms state-of-the-art unsupervised online cross-modal hashing methods.
Keywords:
Cross-modal retrieval
unsupervised online hashing
common representation learning
dynamic prototype update

Journal

ACM Transactions on Multimedia Computing Communications and Applications cover
ACM Transactions on Multimedia Computing Communications and Applications
IF:
6
Papers:
2.0K
Citations:
5.4K

Organization

S
shandong jianzhu university
Scholars:
4.3K
Papers: 3.1K
Citations: 3
S
shandong university
Scholars:
9.1W
Papers: 6.3W
Citations: 94
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