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User preference-aware video highlight detection via deep reinforcement learning

机译:用户偏好感知视频通过深度加强学习突出检测

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摘要

Video highlight detection is a technique to retrieval short video clips that capture a user's primary attention or interest within an unedited video. There exists a substantial interest in automatizing highlight detection to facilitate efficient video browsing. Recent research often focuses on objectively finding frames that are visual representative as well as diversity to form highlights. However, the user preferences are relatively subjective and may vary from person to person. Therefore, it is not trivial to find different highlights over a same video for different users. This paper describes a reinforcement learning-based framework that detects different highlights according to different user's preferences. Under this framework, a novel reward function that accounts for relevance of user preference to candidate highlights is introduced. During training, the framework strives for earning higher rewards by learning to detect more diverse and more preference-aware highlights. The effectiveness of the proposed method is illustrated by applying it to different types of real world movies, and show it achieves state-of-the-art results.
机译:视频高亮检测是一种检索短路剪辑的技术,可在未经编辑的视频中捕获用户的主要注意或兴趣。存在对自动化突出显示检测的大量兴趣,以便于有效的视频浏览。最近的研究通常侧重于客观地发现视觉代表的帧以及形成亮点的多样性。然而,用户偏好是相对主观的,并且可能因人人而异。因此,在不同的用户中找到不同视频的不同亮点并不重要。本文介绍了一种基于加强学习的框架,可根据不同的用户的偏好检测不同的亮点。在此框架下,介绍了一种新的奖励函数,其介绍了用户偏好对候选亮点的相关性的相关性。在培训期间,框架通过学习来探讨更高的奖励,以检测更多多样化,更偏好感知的亮点。通过将其应用于不同类型的现实世界电影来说明所提出的方法的有效性,并显示它实现最先进的结果。

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