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Effective and Efficient Content Redundancy Detection of Web Videos

机译:Web视频的有效和高效的内容冗余检测

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摘要

Currently, an unprecedentedly vast amount of videos are hosted on the Internet and shared by users across the world. Within these videos, a considerable portion is duplicate or near-duplicate. Consequently, building an effective yet efficient content-based redundancy detection system is of importance, as this research would be beneficial to a variety of applications. Despite the progress in this field, designing a practical detection system for web videos continues to be difficult, because of the contradictions between the accuracy and speed requirements. In this paper, we propose a novel near-duplicate video detection system, CompoundEyes, whose design philosophy deviates from the conventional feature-centered paradigm. Instead, the focus of our system has been shifted from the design of an advanced feature representation to the design of system architecture. This design methodology not only ensures a decent detection accuracy by the collaboration of the classifiers but also substantially accelerates the detection speed due to the low dimensionality of the feature representations and the exploitation of the parallelism among the components. Experiments have been conducted to demonstrate that the CompoundEyes is both accurate and fast.
机译:目前,互联网上举办了前所未有的大量视频,并由世界各地的用户共享。在这些视频中,相当大的部分是重复的或近副本。因此,构建有效但有效的基于内容的冗余检测系统是重要的,因为该研究将有利于各种应用。尽管在该领域进展,但为网络视频的实际检测系统仍然很困难,因为准确性和速度要求之间的矛盾。在本文中,我们提出了一种新的近副复制视频检测系统,其设计理念偏离了传统的特征居中范式。相反,我们的系统的重点是从设计的高级特征表示的设计转移到系统架构的设计。该设计方法不仅通过分类器的协作确保了体面的检测精度,而且因此由于特征表示的低维度和部件之间的并行性的开发而基本上加速了检测速度。已经进行了实验以证明综合性既准确又快速。

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