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Segmentation of Lecture Videos Based on Spontaneous Speech Recognition

机译:基于自发语音识别的演讲视频分割

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In the past decade, the number of digital academic lecture videos has increased dramatically as recording technology has become more affordable. There are technical problems in the use of recorded lectures for learning: the problem of easy access to the multimedia lecture video content and the problem of finding the appropriate information. The first step to a solution is to segment the videos into smaller cohesive areas. In this paper, we present a study on segmenting recorded lecture videos based on their transcripts with standard linear text segmentation algorithm (LTSA). Our evaluation dataset is based on different languages and various speakers' recordings. Three different tests analyze the outcome of ten algorithms: 1) Whether LTSA is able to segment the transcript into the slide transitions. 2) The presentation slides are used as an additional resource for the segmenting procedure. 3) Analyzing the topic boundaries independently from the slide transitions.
机译:在过去的十年中,随着录制技术变得越来越便宜,数字学术讲座视频的数量急剧增加。在使用录制的讲座进行学习时存在技术问题:容易访问多媒体讲座视频内容的问题以及找到适当信息的问题。解决方案的第一步是将视频分割成较小的内聚区域。在本文中,我们提出了一种使用标准线性文本分割算法(LTSA)根据演讲稿对录制的演讲视频进行分割的研究。我们的评估数据集基于不同的语言和各种说话者的录音。三种不同的测试分析了十种算法的结果:1)LTSA是否能够将转录本分割为幻灯片过渡。 2)演示幻灯片用作分段过程的附加资源。 3)独立于幻灯片过渡分析主题边界。

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