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Cross-media analysis and reasoning: advances and directions 被引量:29
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作者 Yu-xin PENG Wen-wu ZHU +6 位作者 Yao ZHAO Chang-sheng XU qing-ming huang Han-qing LU Qing-hua ZHENG Tie-jun huang Wen GAO 《Frontiers of Information Technology & Electronic Engineering》 SCIE EI CSCD 2017年第1期44-57,共14页
Cross-media analysis and reasoning is an active research area in computer science, and a promising direction for artificial intelligence. However, to the best of our knowledge, no existing work has summarized the stat... Cross-media analysis and reasoning is an active research area in computer science, and a promising direction for artificial intelligence. However, to the best of our knowledge, no existing work has summarized the state-of-the-art methods for cross-media analysis and reasoning or presented advances, challenges, and future directions for the field. To address these issues, we provide an overview as follows: (1) theory and model for cross-media uniform representation; (2) cross-media correlation understanding and deep mining; (3) cross-media knowledge graph construction and learning methodologies; (4) cross-media knowledge evolution and reasoning; (5) cross-media description and generation; (6) cross-media intelligent engines; and (7) cross-media intelligent applications. By presenting approaches, advances, and future directions in cross-media analysis and reasoning, our goal is not only to draw more attention to the state-of-the-art advances in the field, but also to provide technical insights by discussing the challenges and research directions in these areas. 展开更多
关键词 Cross-media analysis Cross-media reasoning Cross-media applications
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