支持深度学习的视觉数据库管理系统研究进展

Translated title of the contribution: Research Progress on Vision Database Management Systems Supporting Deep Learning

Research output: Contribution to journalReview articlepeer-review

1 Scopus citations

Abstract

Computer vision has been widely used in various real-world scenarios due to its powerful learning ability. With the development of databases, there is a growing trend in research to exploit mature data management techniques in databases for vision analytics applications. The integration and processing of multimodal data, including images, video and text, promotes diversity and improves accuracy in vision analytics applications. In recent years, due to the popularization of deep learning, there has been a growing interest in vision analytics applications that support deep learning. Nevertheless, traditional database management techniques in deep learning scenarios suffer from the issues such as lack of semantics for vision analytics and inefficiency in application execution. Hence, vision database management systems that support deep learning have been widely studied. This study reviews the progress of vision database management systems. First, this study summarizes the challenges faced by vision database management systems in different dimensions, including programming interface, query optimization, execution scheduling, and data storage. Second, this study discusses the technologies in each of these four dimensions. Finally, the study investigates the future research directions of vision database management systems.

Translated title of the contributionResearch Progress on Vision Database Management Systems Supporting Deep Learning
Original languageChinese (Traditional)
Pages (from-to)1207-1230
Number of pages24
JournalRuan Jian Xue Bao/Journal of Software
Volume35
Issue number3
DOIs
StatePublished - Mar 2024

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