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An integrated semantic-based approach in concept based video retrieval

机译:基于概念的视频检索中基于语义的集成方法

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摘要

Multimedia content has been growing quickly and video retrieval is regarded as one of the most famous issues in multimedia research. In order to retrieve a desirable video, users express their needs in terms of queries. Queries can be on object, motion, texture, color, audio, etc. Low-level representations of video are different from the higher level concepts which a user associates with video. Therefore, query based on semantics is more realistic and tangible for end user. Comprehending the semantics of query has opened a new insight in video retrieval and bridging the semantic gap. However, the problem is that the video needs to be manually annotated in order to support queries expressed in terms of semantic concepts. Annotating semantic concepts which appear in video shots is a challenging and time-consuming task. Moreover, it is not possible to provide annotation for every concept in the real world. In this study, an integrated semantic-based approach for similarity computation is proposed with respect to enhance the retrieval effectiveness in concept-based video retrieval. The proposed method is based on the integration of knowledge-based and corpus-based semantic word similarity measures in order to retrieve video shots for concepts whose annotations are not available for the system. The TRECVID 2005 dataset is used for evaluation purpose, and the results of applying proposed method are then compared against the individual knowledge-based and corpus-based semantic word similarity measures which were utilized in previous studies in the same domain. The superiority of integrated similarity method is shown and evaluated in terms of Mean Average Precision (MAP).
机译:多媒体内容发展迅速,视频检索被视为多媒体研究中最著名的问题之一。为了检索期望的视频,用户根据查询表达他们的需求。查询可以针对对象,运动,纹理,颜色,音频等。视频的低级表示形式不同于用户与视频相关联的高级概念。因此,基于语义的查询对于最终用户而言更为现实和切实。理解查询的语义为视频检索和弥合语义鸿沟开辟了新的见解。然而,问题在于视频需要手动注释以便支持根据语义概念表达的查询。注释出现在视频镜头中的语义概念是一项艰巨而耗时的任务。而且,不可能为现实世界中的每个概念提供注释。在这项研究中,针对提高基于概念的视频检索中的检索效率,提出了一种基于语义的集成式相似度计算方法。所提出的方法基于基于知识和基于语料库的语义词相似性度量的集成,以检索其注释不可用于系统的概念的视频镜头。使用TRECVID 2005数据集进行评估,然后将应用该方法的结果与以前在同一领域进行研究的基于知识的个体和基于语料库的语义词相似性度量进行比较。通过平均均值精度(MAP)展示并评估了集成相似度方法的优越性。

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