Multi-modal Hash Learning

Multi-modal Hash Learning

EnglishPaperback / softbackPrint on demand
Zhu Lei
Springer, Berlin
EAN: 9783031372933
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This book systemically presents key concepts of multi-modal hashing technology, recent advances on large-scale efficient multimedia search and recommendation, and recent achievements in multimedia indexing technology.  With the explosive growth of multimedia contents, multimedia retrieval is currently facing unprecedented challenges in both storage cost and retrieval speed. The multi-modal hashing technique can project high-dimensional data into compact binary hash codes. With it, the most time-consuming semantic similarity computation during the multimedia retrieval process can be significantly accelerated with fast Hamming distance computation, and meanwhile the storage cost can be reduced greatly by the binary embedding.  The authors introduce the categorization of existing multi-modal hashing methods according to various metrics and datasets. The authors also collect recent multi-modal hashing techniques and describe the motivation, objective formulations, and optimization steps for context-aware hashing methods based on the tag-semantics transfer.  


EAN 9783031372933
ISBN 303137293X
Binding Paperback / softback
Publisher Springer, Berlin
Publication date August 23, 2024
Pages 199
Language English
Dimensions 240 x 168
Country Switzerland
Authors Guan, Weili; Li, Jingjing; Zhu Lei
Edition 2024 ed.
Series Synthesis Lectures on Information Concepts, Retrieval, and Services