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Performance Evaluation of Video Summaries Using Efficient Image Euclidean Distance

机译:基于有效图像欧氏距离的视频摘要性能评估

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Video summarization aims to manage video data by providing succinct representation of videos, however its evaluation is somewhat challenging. IMage Euclidean Distance (IMED) has been proposed for the measurement of the similarity of two images. Though it is effective and can tolerate the distortion and/or small movement of the objects, its computational complexity is high in the order of O(n~2). This paper proposes an efficient method for evaluating the video summaries. It retrieves a set of matched frames between automatic summary and the ground truth summary through two way search, in which the similarity between two frames are measured using the Efficient IMED (EIMED), which considers neighboring pixels, rather than all the pixels in the frames. Experimental results based on a publicly accessible dataset has shown that the proposed method is effective in finding precise matches and usually discards the false ones, leading to a more objective measurement of the performance for various techniques.
机译:视频摘要旨在通过提供视频的简洁表示来管理视频数据,但是其评估有些挑战。图像欧几里德距离(IMED)已被提议用于测量两个图像的相似性。尽管它是有效的并且可以容忍对象的变形和/或小运动,但是其计算复杂度高为O(n〜2)。本文提出了一种评估视频摘要的有效方法。它通过双向搜索来检索自动摘要和地面事实摘要之间的一组匹配帧,其中使用有效IMED(EIMED)测量两个帧之间的相似性,该方法考虑了相邻像素,而不是帧中的所有像素。基于可公开访问的数据集的实验结果表明,该方法可以有效地找到精确匹配项,并且通常会丢弃错误的匹配项,从而可以更客观地衡量各种技术的性能。

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