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A tracking based fast online complete video synopsis approach

机译:基于跟踪的快速在线完整视频简介方法

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By segmenting moving objects out and then densely stitching them into background frames, video synopsis provides an efficient way to condense long videos while preserving most activities. Existing video synopsis methods, however, often suffer from either high computation cost due to global energy minimization or unsatisfactory condense rate to avoid loss of important object activities. To address these problems, a tracking based fast online video synopsis approach is proposed in this paper which makes following three main contributions: 1) an online formulation of the video synopsis problem which makes the approach very fast and scalable to endless surveillance videos with reduced chronological disorders, 2) a tracking based schema which can preserve most object activities, and 3) a complete optimization process from both temporal and spatial redundancies of the video which results in much higher condense rate and less object conflict rate. Experimental results demonstrate the effectiveness and efficiency of proposed approach compared to the traditional method on public surveillance videos.
机译:通过将移动的物体进行分割,然后将其密集地缝合到背景帧中,视频提要提供了一种有效的方式来压缩长视频,同时保留大多数活动。然而,由于全局能量最小化或避免令人满意的重要物体活动损失的冷凝率,现有的视频概要方法经常遭受高计算成本的困扰。为了解决这些问题,本文提出了一种基于跟踪的快速在线视频提要方法,该方法具有以下三个主要贡献:1)视频提要问题的在线表达,使该方法非常快速且可扩展到具有递减时序的无尽监视视频障碍; 2)可保留大多数对象活动的基于跟踪的架构,以及3)视频时间和空间冗余的完整优化过程,可导致更高的压缩率和更少的对象冲突率。实验结果表明,与传统的公共监控视频方法相比,该方法的有效性和效率。

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