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Automatic detection of slide transitions in lecture videos

机译:自动检测演讲视频中的幻灯片过渡

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摘要

This paper presents a method to automatically detect slide changes in lecture videos. For accurate detection, the regions capturing slide images are first identified from video frames. Then, SIFT features are extracted from the regions, which are invariant to image scaling and rotation. These features are used to compare similarity between frames. If the similarity is smaller than a threshold, slide transition is detected. The threshold is estimated based on the mean and standard deviation of sample frames' similarities. Using this method, high detection accuracy can be obtained without any supplementary slide images. The proposed method also supports detection of backward slide transitions that occur when a speaker returns to a previous slide to emphasize its contents. In experiments conducted on our test collection, the proposed method showed 87 % accuracy in forward transition detection and 86 % accuracy in backward transition detection.
机译:本文提出了一种自动检测演讲视频中幻灯片变化的方法。为了精确检测,首先从视频帧中识别捕获幻灯片图像的区域。然后,从区域中提取SIFT特征,这些特征对于图像缩放和旋转不变。这些功能用于比较帧之间的相似性。如果相似度小于阈值,则检测到幻灯片过渡。该阈值是根据样本帧相似度的平均值和标准偏差估算的。使用此方法,无需任何补充幻灯片图像即可获得高检测精度。所提出的方法还支持检测说话者返回到前一张幻灯片以强调其内容时发生的向后幻灯片过渡。在我们测试集上进行的实验中,提出的方法在前向跃迁检测中的准确度为87%,在向后跃迁检测中的准确度为86%。

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