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首页> 外文期刊>International journal of multimedia data engineering & management >Constructing and Utilizing Video Ontology for Accurate and Fast Retrieval
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Constructing and Utilizing Video Ontology for Accurate and Fast Retrieval

机译:建立和利用视频本体进行准确,快速的检索

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摘要

This paper examines video retrieval based on Query-By-Example (QBE) approach, where shots relevant to a query are retrieved from large-scale video data based on their similarity to example shots. This involves two crucial problems: The first is that similarity in features does not necessarily imply similarity in semantic content. The second problem is an expensive computational cost to compute the similarity of a huge number of shots to example shots. The authors have developed a method that can filter a large number of shots irrelevant to a query, based on a video ontology that is knowledge base about concepts displayed in a shot. The method utilizes various concept relationships (e.g., generalization/specialization, sibling, part-of and co-occurrence) defined in the video ontology. In addition, although the video ontology assumes that shots are accurately annotated with concepts, accurate annotation is difficult due to the diversity of forms and appearances of the concepts. Dempster-Shafer theory is used to account the uncertainty in determining the relevance of a shot based on inaccurate annotation of this shot. Experimental results on TRECVID 2009 video data validate the effectiveness of the method.
机译:本文研究了基于示例查询(QBE)方法的视频检索,其中基于与示例镜头的相似性从大型视频数据中检索与查询相关的镜头。这涉及两个关键问题:第一个问题是功能上的相似性并不一定意味着语义内容上的相似性。第二个问题是计算大量镜头与示例镜头相似度的昂贵计算成本。作者已经开发了一种方法,该方法可以基于视频本体(该本体是有关镜头中显示的概念的知识库)来过滤与查询无关的大量镜头。该方法利用在视频本体中定义的各种概念关系(例如,概括/专业化,同级,部分和同时出现)。另外,尽管视频本体假定使用概念对镜头进行了正确注释,但是由于概念的形式和外观的多样性,因此很难进行准确的注释。 Dempster-Shafer理论用于基于不正确的镜头注释来确定镜头相关性时的不确定性。 TRECVID 2009视频数据的实验结果验证了该方法的有效性。

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