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Semantic Segmentation of Radio Programs using Social Network Analysis and Duration Distribution Modeling

机译:利用社交网络分析和持续时间分布建模对广播节目进行语义分割

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This work presents and compare two approaches for the semantic segmentation of broadcast news: the first is based on Social Network Analysis, the second is based on Poisson Stochastic Processes. The experiments are performed over 27 hours of material: preliminary results are obtained by addressing the problem of splitting different episodes of the same program into two parts corresponding to a news bulletin and a talk-show respectively. The results show that the transition point between the two parts can be detected with an average error of around three minutes, i.e. roughly 5 percent of each episode duration.
机译:这项工作提出并比较了两种用于广播新闻语义分割的方法:第一种基于社交网络分析,第二种基于泊松随机过程。实验耗时27个小时,通过解决将同一节目的不同片段分为两个部分(分别对应新闻公告和脱口秀节目)的问题获得初步结果。结果表明,可以检测到两个部分之间的过渡点,平均误差约为三分钟,即每个情节持续时间的大约5%。

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