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Automatic semantic video annotation in wide domain videos based on similarity and commonsense knowledgebases

机译:基于相似性和常识性知识库的广域视频中的自动语义视频注释

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摘要

In this paper, we introduce a novel framework for automatic Semantic Video Annotation. As this framework detects possible events occurring in video clips, it forms the annotating base of a video search engine. To achieve this purpose, the system has to able to operate on uncontrolled wide-domain videos. Thus, all layers have to be based on generic features. The aim is to help bridge the “semantic gap“, which is the difference between the low-level visual features and the human''s perception, by finding videos with similar visual events, then analyzing their free text annotation to find the best description for this new video using commonsense knowledgebases. Experiments were performed on wide-domain video clips from the TRECVID 2005 BBC rush standard database. Results from these experiments show promising integrity between those two layers in order to find expressing annotations for the input video. These results were evaluated based on retrieval performance.
机译:在本文中,我们介绍了一种新型的自动语义视频注释框架。由于此框架检测到视频剪辑中可能发生的事件,因此它构成了视频搜索引擎的注释基础。为了达到这个目的,系统必须能够对不受控制的广域视频进行操作。因此,所有层都必须基于通用特征。目的是通过查找具有类似视觉事件的视频,然后分析其自由文本注释以找到最佳描述,从而帮助弥合“语义鸿沟”,即低级视觉特征与人类感知之间的差异使用常识知识库来制作这个新视频。对来自TRECVID 2005 BBC rush标准数据库的广域视频剪辑进行了实验。这些实验的结果表明,这两层之间有希望的完整性,以便找到输入视频的表达注释。这些结果是基于检索性能进行评估的。

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