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Semantic analysis based on fusion of audio/visual features for soccer video

机译:基于足球视频的音频/视觉功能融合的语义分析

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In order to analysis the semantic content of soccer video, the audio/visual features are effectively extracted. Based on the theory that the variation of video content would cause the fluctuation of viewers’ affection, the highlight time curve (HTC) is generated by fusion of affection arousal factors to reveal the excitement of the game. The semantic boundaries of highlights are determined by HTC combined with the domain knowledge of soccer video. With the help of distinguishable highlight feature vectors (HFVs), highlights are classified into goal, shoot, and foul. Compared with the existing works, the main contributions of this paper are as follows. We proposed a novel Hough transform based whistle detection algorithm and achieves more effective performance. A robust goalmouth detection algorithm is presented and contributed to the highlight classification phase. The highlights with semantic boundaries are accurately extracted and classified. Experiments conducted on real world soccer videos demonstrated the good performance of the proposed framework.
机译:为了分析足球视频的语义含量,有效地提取了音频/可视特征。基于视频内容的变化会导致观众感情的波动的理论,突出时间曲线(HTC)是通过融合情感唤醒因素来揭示游戏的兴奋。亮点的语义边界由HTC结合与足球视频的域知识相结合。在可区分的突出特征向量(HFV)的帮助下,亮点分为目标,拍摄和犯规。与现有作品相比,本文的主要贡献如下。我们提出了一种基于新的Hough变换的哨声检测算法,实现了更有效的性能。提出了一种强大的目标检测算法,并促进了突出显示分类阶段。具有语义边界的亮点是准确提取和分类。在现实世界足球视频上进行的实验表明了拟议框架的良好表现。

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