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Enhancing cross-modal retrieval via label graph optimization and hybrid loss functions
by
Peng, Simin
, Wang, Lin
, Wang, Chenchen
in
631/114
/ 639/166
/ 639/705
/ Artificial intelligence
/ Circle-Soft
/ Cross-modal retrieval
/ Deep learning
/ Humanities and Social Sciences
/ L2-GCN
/ multidisciplinary
/ Neural networks
/ Optimization
/ Science
/ Science (multidisciplinary)
/ Semantics
2026
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Enhancing cross-modal retrieval via label graph optimization and hybrid loss functions
by
Peng, Simin
, Wang, Lin
, Wang, Chenchen
in
631/114
/ 639/166
/ 639/705
/ Artificial intelligence
/ Circle-Soft
/ Cross-modal retrieval
/ Deep learning
/ Humanities and Social Sciences
/ L2-GCN
/ multidisciplinary
/ Neural networks
/ Optimization
/ Science
/ Science (multidisciplinary)
/ Semantics
2026
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Do you wish to request the book?
Enhancing cross-modal retrieval via label graph optimization and hybrid loss functions
by
Peng, Simin
, Wang, Lin
, Wang, Chenchen
in
631/114
/ 639/166
/ 639/705
/ Artificial intelligence
/ Circle-Soft
/ Cross-modal retrieval
/ Deep learning
/ Humanities and Social Sciences
/ L2-GCN
/ multidisciplinary
/ Neural networks
/ Optimization
/ Science
/ Science (multidisciplinary)
/ Semantics
2026
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Enhancing cross-modal retrieval via label graph optimization and hybrid loss functions
Journal Article
Enhancing cross-modal retrieval via label graph optimization and hybrid loss functions
2026
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Overview
Cross-modal retrieval, particularly image-text matching, is crucial in multimedia analysis and artificial intelligence, with applications in intelligent search and human-computer interaction. Current methods often overlook the rich semantic relationships between labels, leading to limited discriminability. We introduce a Two-Layer Graph Convolutional Network (L2-GCN) to model label correlations and a hybrid loss function, Circle-Soft, to enhance alignment and discriminability. Extensive experiments on the NUS-WIDE, MIRFlickr, and MS-COCO datasets demonstrate the effectiveness of our approach. The results show that the proposed method consistently outperforms current baselines, achieving accuracy improvements of 0.5%, 0.5%, and 1.0%, respectively. The source code is accessible via https://github.com/buzzcut619/L2-GCN-CIRCLE-SOFT.
Publisher
Nature Publishing Group UK,Nature Publishing Group,Nature Portfolio
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