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Intelligent and efficient video moment localization
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
正題名/作者:
Intelligent and efficient video moment localization/ by Meng Liu ... [et al.].
其他作者:
Liu, Meng.
出版者:
Cham :Springer Nature Switzerland : : 2025.,
面頁冊數:
xvii, 154 p. :ill., digital ; : 24 cm.;
Contained By:
Springer Nature eBook
標題:
Multimedia Information Systems. -
電子資源:
https://doi.org/10.1007/978-3-031-87588-5
ISBN:
9783031875885
Intelligent and efficient video moment localization
Intelligent and efficient video moment localization
[electronic resource] /by Meng Liu ... [et al.]. - Cham :Springer Nature Switzerland :2025. - xvii, 154 p. :ill., digital ;24 cm.
Chapter 1: Introduction -- Chapter 2: Semantic Enhanced Video Moment Localization -- Chapter 3: Semantic Alignment Video Moment Localization -- Chapter 4: Semantic Pruning Video Moment Localization -- Chapter 5: Semantic Collaborative Video Moment Localization -- Chapter 6: Weakly-Supervised Video Moment Localization -- Chapter 7: Efficient Hashing based Video Moment Localization -- Chapter 8: Research Frontiers.
This book provides a comprehensive exploration of video moment localization, a rapidly emerging research field focused on enabling precise retrieval of specific moments within untrimmed, unsegmented videos. With the rapid growth of digital content and the rise of video-sharing platforms, users face significant challenges when searching for particular content across vast video archives. This book addresses how video moment localization uses natural language queries to bridge the gap between video content and semantic understanding, offering an intuitive solution for locating specific moments across diverse domains like surveillance, education, and entertainment. This book explores the latest advancements in video moment localization, addressing key issues such as accuracy, efficiency, and scalability. It presents innovative techniques for contextual understanding and cross-modal semantic alignment, including attention mechanisms and dynamic query decomposition. Additionally, the book discusses solutions for enhancing computational efficiency and scalability, such as semantic pruning and efficient hashing, while introducing frameworks for better integration between visual and textual data. It also examines weakly-supervised learning approaches to reduce annotation costs without sacrificing performance. Finally, the book covers real-world applications and offers insights into future research directions.
ISBN: 9783031875885
Standard No.: 10.1007/978-3-031-87588-5doiSubjects--Topical Terms:
669810
Multimedia Information Systems.
LC Class. No.: TA1637
Dewey Class. No.: 621.367
Intelligent and efficient video moment localization
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Chapter 1: Introduction -- Chapter 2: Semantic Enhanced Video Moment Localization -- Chapter 3: Semantic Alignment Video Moment Localization -- Chapter 4: Semantic Pruning Video Moment Localization -- Chapter 5: Semantic Collaborative Video Moment Localization -- Chapter 6: Weakly-Supervised Video Moment Localization -- Chapter 7: Efficient Hashing based Video Moment Localization -- Chapter 8: Research Frontiers.
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This book provides a comprehensive exploration of video moment localization, a rapidly emerging research field focused on enabling precise retrieval of specific moments within untrimmed, unsegmented videos. With the rapid growth of digital content and the rise of video-sharing platforms, users face significant challenges when searching for particular content across vast video archives. This book addresses how video moment localization uses natural language queries to bridge the gap between video content and semantic understanding, offering an intuitive solution for locating specific moments across diverse domains like surveillance, education, and entertainment. This book explores the latest advancements in video moment localization, addressing key issues such as accuracy, efficiency, and scalability. It presents innovative techniques for contextual understanding and cross-modal semantic alignment, including attention mechanisms and dynamic query decomposition. Additionally, the book discusses solutions for enhancing computational efficiency and scalability, such as semantic pruning and efficient hashing, while introducing frameworks for better integration between visual and textual data. It also examines weakly-supervised learning approaches to reduce annotation costs without sacrificing performance. Finally, the book covers real-world applications and offers insights into future research directions.
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