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Human consistency evaluation of static video summaries

机译:静态视频摘要的人工一致性评估

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摘要

Automatic video summarization aims to provide brief representation of videos. Its evaluation is quite challenging, usually relying on comparison with user summaries. This study views it in a different perspective in terms of verifying the consistency of user summaries, as the outcome of video summarization is usually judged based on them. We focus on human consistency evaluation of static video summaries in which the user summaries are evaluated among themselves using the consistency modelling method we proposed recently. The purpose of such consistency evaluation is to check whether the users agree among themselves. The evaluation is performed on different publicly available datasets. Another contribution lies in the creation of static video summaries from the available video skims of the SumMe datatset. The results show that the level of agreement varies significantly between the users for the selection of key frames, which denotes the hidden challenge in automatic video summary evaluation. Moreover, the maximum agreement level of the users for a certain dataset, may indicate the best performance that the automatic video summarization techniques can achieve using that dataset.
机译:自动视频摘要旨在提供视频的简短表示。它的评估非常具有挑战性,通常依赖于与用户摘要的比较。这项研究从验证用户摘要的一致性方面以不同的角度来看待视频,因为通常基于视频摘要来判断视频摘要的结果。我们专注于静态视频摘要的人工一致性评估,其中使用我们最近提出的一致性建模方法在用户摘要之间评估用户摘要。这种一致性评估的目的是检查用户之间是否同意。评估是在不同的公共可用数据集上执行的。另一个贡献是根据SumMe数据集的可用视频摘要创建静态视频摘要。结果表明,用户在关键帧选择上的一致程度差异很大,这表明自动视频摘要评估中存在隐藏的挑战。而且,对于特定数据集的用户的最大同意水平可以指示自动视频汇总技术可以使用该数据集实现的最佳性能。

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