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Similarity graph-correlation reconstruction network for unsupervised cross-modal hashing
Existing cross-modal hash retrieval methods can simultaneously enhance retrieval speed
and reduce storage space. However, these methods face a major challenge in determining …
and reduce storage space. However, these methods face a major challenge in determining …
Space4hgnn: a novel, modularized and reproducible platform to evaluate heterogeneous graph neural network
Heterogeneous Graph Neural Network (HGNN) has been successfully employed in various
tasks, but we cannot accurately know the importance of different design dimensions of …
tasks, but we cannot accurately know the importance of different design dimensions of …
Multiscale salient alignment learning for remote-sensing image–text retrieval
Remote-sensing image–text (RSIT) retrieval involves the use of either textual descriptions or
remote-sensing images (RSI) as queries to retrieve relevant RSIs or corresponding text …
remote-sensing images (RSI) as queries to retrieve relevant RSIs or corresponding text …
Multiple instance relation graph reasoning for cross-modal hash retrieval
The similarity calculation is too simple in most cross-modal hash retrieval methods, which do
not consider the impact of the relations between instances. To solve this problem, this paper …
not consider the impact of the relations between instances. To solve this problem, this paper …
Dual-stream knowledge-preserving hashing for unsupervised video retrieval
Unsupervised video hashing usually optimizes binary codes by learning to reconstruct input
videos. Such reconstruction constraint spends much effort on frame-level temporal context …
videos. Such reconstruction constraint spends much effort on frame-level temporal context …
Multimodal neural databases
The rise in loosely-structured data available through text, images, and other modalities has
called for new ways of querying them. Multimedia Information Retrieval has filled this gap …
called for new ways of querying them. Multimedia Information Retrieval has filled this gap …
RICH: A rapid method for image-text cross-modal hash retrieval
B Li, D Yao, Z Li - Displays, 2023 - Elsevier
Deep cross-modal hash retrieval (DCMHR) methods can effectively analyze the correlation
of multimodal data while maintaining efficiency. However, to pursue better accuracy, most …
of multimodal data while maintaining efficiency. However, to pursue better accuracy, most …
Cross-lingual cross-modal pretraining for multimodal retrieval
Recent pretrained vision-language models have achieved impressive performance on cross-
modal retrieval tasks in English. Their success, however, heavily depends on the availability …
modal retrieval tasks in English. Their success, however, heavily depends on the availability …
Gilbert: Generative vision-language pre-training for image-text retrieval
Given a text/image query, image-text retrieval aims to find the relevant items in the database.
Recently, visual-linguistic pre-training (VLP) methods have demonstrated promising …
Recently, visual-linguistic pre-training (VLP) methods have demonstrated promising …
Enhancing dynamic image advertising with vision-language pre-training
In the multimedia era, image becomes an effective medium in search advertising. Dynamic
Image Advertising (DIA), a system that matches queries with appropriate ad images and …
Image Advertising (DIA), a system that matches queries with appropriate ad images and …