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HIGHLIGHT SOUND EFFECTS DETECTION IN AUDIO STREAM

机译:突出显示音频流中的声音检测

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This paper addresses the problem of highlight sound effects detection in audio stream, which is very useful in fields of video summarization and highlight extraction. Unlike researches on audio segmentation and classification, in this domain, it just locates those highlight sound effects in audio stream. An extensible framework is proposed and in current system three sound effects are considered: laughter, applause and cheer, which are tied up with highlight events in entertainments, sports, meetings and home videos. HMMs are used to model these sound effects and a log-likelihood scores based method is used to make final decision. A sound effect attention model is also proposed to extend general audio attention model for highlight extraction and video summarization. Evaluations on a 2-hours audio database showed very encouraging results.
机译:本文解决了音频流中突出显示声音检测的问题,这在视频摘要字段和突出显示提取中非常有用。与音频分段和分类的研究不同,在此域中,它只定位在音频流中的突出显示。提出了一个可扩展框架,并在当前系统中考虑了三种声音效果:笑声,掌声和欢呼,这些笑容与娱乐,运动,会议和家庭视频中的突出显示事件挂钩。 HMMS用于模拟这些声音效果,并使用基于日志似然评分的方法来进行最终决定。还提出了一种声音效果注意模型,扩展了突出提取和视频摘要的一般音频注意模型。 2小时音频数据库的评估显示出非常令人鼓舞的结果。

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