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Automated Whiteboard Lecture Video Summarization by Content Region Detection and Representation

机译:内容区域检测和表示自动白板讲座视频摘要

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摘要

Lecture videos are rapidly becoming an invaluable source of information for students across the globe. Given the large number of online courses currently available, it is important to condense the information within these videos into a compact yet representative summary that can be used for search-based applications. We propose a framework to summarize whiteboard lecture videos by finding feature representations of detected handwritten content regions to determine unique content. We investigate multi-scale histogram of gradients and embeddings from deep metric learning for feature representation. We explicitly handle occluded, growing and disappearing handwritten content. Our method is capable of producing two kinds of lecture video summaries - the unique regions themselves or so-called key content and keyframes (which contain all unique content in a video segment). We use weighted spatio-temporal conflict minimization to segment the lecture and produce keyframes from detected regions and features. We evaluate both types of summaries and find that we obtain state-of-the-art peformance in terms of number of summary keyframes while our unique content recall and precision are comparable to state-of-the-art.
机译:讲座视频迅速成为全球学生的宝贵信息来源。鉴于目前可用的大量在线课程,重要的是将这些视频中的信息集中在一个紧凑而代表性的摘要中,可以用于基于搜索的应用程序。我们提出了一个框架来通过查找检测到的手写内容区域的特征表示来总结白板讲座,以确定唯一内容。我们调查从深度度量学习的渐变和嵌入的多尺度直方图,从而进行特征表示。我们明确地处理了封闭,生长和消失的手写内容。我们的方法能够产生两种讲座视频摘要 - 独特的区域本身或所谓的密钥内容和关键帧(它包含视频段中的所有唯一内容)。我们使用加权时空冲突最小化以分段讲座并从检测到的区域和特征生成关键帧。我们评估两种类型的摘要,并发现我们在摘要关键帧的数量方面获得最先进的宝贵能力,而我们独特的内容召回和精度与最先进的概念相当。

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