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3D object duplicate detection for video retrieval

机译:用于视频检索的3D对象重复检测

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Content-based video retrieval has become a very active research area in the last decade due to the increasing number of video content shared on social networks such as YouTube and DailyMotion. While most of the content-based video retrieval approaches employ low-level visual features for global analysis of the video, this paper proposes an object-based retrieval method as an alternative. The goal of the proposed method is to retrieve key frames and shots of a video that contain a particular object. The key idea is to apply an existing object duplicate detection method iteratively to the video sequence in order to compensate for 3D view variations, illumination changes and partial occlusions. Our approach combines viewpoint-invariant region descriptors to describe the appearance of an object using a graph model which considers the spatial layout of the individual regions. Given a query object provided by the user in the form of an image and a region of interest, the system retrieves shots containing this object by analyzing a set of key frames for each shot. The robustness of our approach is demonstrated using a video in which a 3D object is recorded from different view points and with partial occlusions.
机译:在过去的十年中,由于在YouTube和DailyMotion等社交网络上共享的视频内容越来越多,基于内容的视频检索已成为一个非常活跃的研究领域。尽管大多数基于内容的视频检索方法都采用低级视觉特征来进行视频的全局分析,但本文提出了一种基于对象的检索方法作为替代方法。提出的方法的目标是检索包含特定对象的视频的关键帧和镜头。关键思想是将现有的对象重复检测方法迭代地应用于视频序列,以补偿3D视图变化,照明变化和部分遮挡。我们的方法结合了视点不变区域描述符,使用考虑了各个区域空间布局的图形模型来描述对象的外观。给定用户以图像和感兴趣区域的形式提供的查询对象,系统通过为每个镜头分析一组关键帧来检索包含该对象的镜头。我们的方法的鲁棒性通过视频进行了演示,在该视频中,从不同的视角记录了3D对象,并且部分遮挡了该视频。

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