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Semantic indexing of soccer audio-visual sequences: a multimodal approach based on controlled Markov chains

机译:足球视听序列的语义索引:基于受控马尔可夫链的多峰方法

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摘要

Content characterization of sport videos is a subject of great interest to researchers working on the analysis of multimedia documents. In this paper, we propose a semantic indexing algorithm which uses both audio and visual information for salient event detection in soccer. The video signal is processed first by extracting low-level visual descriptors directly from an MPEG-2 bit stream. It is assumed that any instance of an event of interest typically affects two consecutive shots and is characterized by a different temporal evolution of the visual descriptors in the two shots. This motivates the introduction of a controlled Markov chain to describe such evolution during an event of interest, with the control input modeling the occurrence of a shot transition. After adequately training different controlled Markov chain models, a list of video segments can be extracted to represent a specific event of interest using the maximum likelihood criterion. To reduce the presence of false alarms, low-level audio descriptors are processed to order the candidate video segments in the list so that those associated to the event of interest are likely to be found in the very first positions. We focus in particular on goal detection, which represents a key event in a soccer game, using camera motion information as a visual cue and the "loudness" as an audio descriptor. The experimental results show the effectiveness of the proposed multimodal approach.
机译:体育视频的内容表征是研究多媒体文档的研究人员非常感兴趣的主题。在本文中,我们提出了一种语义索引算法,该算法将音频和视觉信息都用于足球中的显着事件检测。首先通过直接从MPEG-2比特流中提取低级视觉描述符来处理视频信号。假定感兴趣事件的任何实例通常会影响两个连续的镜头,并以两个镜头中视觉描述符的不同时间演变为特征。这激发了引入受控马尔可夫链来描述感兴趣事件期间的这种演化,而控制输入则模拟了镜头过渡的发生。在充分训练了不同的受控马尔可夫链模型之后,可以使用最大似然准则提取视频片段列表,以表示特定的关注事件。为了减少错误警报的出现,对低级音频描述符进行了处理,以对列表中的候选视频片段进行排序,以便与感兴趣事件相关的那些视频片段很可能会在最开始的位置找到。我们特别关注目标检测,这是足球比赛中的关键事件,它使用摄像机运动信息作为视觉提示,使用“响度”作为音频描述符。实验结果表明了所提出的多峰方法的有效性。

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