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首页> 外文期刊>IEEE transactions on multimedia >Using Webcast Text for Semantic Event Detection in Broadcast Sports Video
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Using Webcast Text for Semantic Event Detection in Broadcast Sports Video

机译:在广播体育视频中使用网络广播文本进行语义事件检测

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Sports video semantic event detection is essential for sports video summarization and retrieval. Extensive research efforts have been devoted to this area in recent years. However, the existing sports video event detection approaches heavily rely on either video content itself, which face the difficulty of high-level semantic information extraction from video content using computer vision and image processing techniques, or manually generated video ontology, which is domain specific and difficult to be automatically aligned with the video content. In this paper, we present a novel approach for sports video semantic event detection based on analysis and alignment of webcast text and broadcast video. Webcast text is a text broadcast channel for sports game which is co-produced with the broadcast video and is easily obtained from the web. We first analyze webcast text to cluster and detect text events in an unsupervised way using probabilistic latent semantic analysis (pLSA). Based on the detected text event and video structure analysis, we employ a conditional random field model (CRFM) to align text event and video event by detecting event moment and event boundary in the video. Incorporation of webcast text into sports video analysis significantly facilitates sports video semantic event detection. We conducted experiments on 33 hours of soccer and basketball games for webcast analysis, broadcast video analysis and text/video semantic alignment. The results are encouraging and compared with the manually labeled ground truth.
机译:运动视频语义事件检测对于运动视频摘要和检索至关重要。近年来,已经对该领域进行了广泛的研究。但是,现有的体育视频事件检测方法严重依赖视频内容本身,而视频内容本身面临使用计算机视觉和图像处理技术从视频内容中进行高级语义信息提取的困难,或者人工生成的视频本体(特定于领域和很难自动与视频内容对齐。在本文中,我们提出了一种基于对网络广播文本和广播视频进行分析和对齐的运动视频语义事件检测的新方法。网络广播文本是体育比赛的文本广播频道,它与广播视频共同制作,可以很容易地从网络上获得。我们首先使用概率潜在语义分析(pLSA)以无人监督的方式分析网络广播文本以进行聚类和检测文本事件。基于检测到的文本事件和视频结构分析,我们采用条件随机场模型(CRFM)通过检测视频中的事件时刻和事件边界来对齐文本事件和视频事件。将网络广播文本合并到体育视频分析中,极大地促进了体育视频语义事件的检测。我们对33个小时的足球和篮球比赛进行了实验,以进行网络广播分析,广播视频分析和文本/视频语义对齐。结果令人鼓舞,并且与手动标记的地面事实进行了比较。

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