可解释的视频表示

Lukas Diem, M. Zaharieva
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引用次数: 1

摘要

大量可用的视频数据通过关注潜在故事的中心和相关方面以及促进对内容的有效概述和评估,对视频表示方法提出了新的要求。一般来说,内容相关性和重要性的评估是一项高级任务,通常需要人工干预。然而,一些拍摄技术暗示了重要性,并承担了基于内容的自动化分析的潜力。例如,电影中的核心元素(如主角和中心物体)经常通过重复出现来强调。在本文中,我们提出了一种新的方法来自动检测视频序列中这种重复出现的元素,它提供了一个紧凑的和可解释的内容表示。进行的实验概述了该算法在自动化高级视频分析中的挑战和潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Interpretable video representation
The immense amount of available video data poses novel requirements for video representation approaches by means of focusing on central and relevant aspects of the underlying story and facilitating the efficient overview and assessment of the content. In general, the assessment of content relevance and significance is a high-level task that usually requires for human intervention. However, some filming techniques imply importance and bear the potential for automated content-based analysis. For example, core elements in a movie (such as the main characters and central objects) are often emphasized by repeated occurrence. In this paper we present a new approach for the automated detection of such recurring elements in video sequences that provides a compact and interpretable content representation. Performed experiments outline the challenges and the potential of the algorithm for automated high-level video analysis.
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