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Video synopsis generation using spatio-temporal groups

机译:使用时空分组生成视频概要

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摘要

Millions of surveillance cameras operate at 24×7 generating huge amount of visual data for processing. However, retrieval of important activities from such a large data can be time consuming. Thus, researchers are working on finding solutions to present hours of visual data in a compressed, but meaningful way. Video synopsis is one of the ways to represent activities using relatively shorter duration clips. So far, two main approaches have been used by researchers to address this problem, namely synopsis by tracking moving objects and synopsis by clustering moving objects. Synopses outputs, mainly depend on tracking, segmenting, and shifting of moving objects temporally as well as spatially. In many situations, tracking fails, thus produces multiple trajectories of the same object. Due to this, the object may appear and disappear multiple times within the same synopsis output, which is misleading. This also leads to discontinuity and often can be confusing to the viewer of the synopsis. In this paper, we present a new approach for generating compressed video synopsis by grouping tracklets of moving objects. Grouping helps to generate a synopsis where chronologically related objects appear together with meaningful spatio-temporal relation. Our proposed method produces continuous, but a less confusing synopses when tested on publicly available dataset videos as well as in-house dataset videos.
机译:数以百万计的监视摄像机以24×7的速度运行,生成大量的可视数据进行处理。但是,从如此大的数据中检索重要活动可能很耗时。因此,研究人员正在努力寻找解决方案,以压缩但有意义的方式呈现可视化数据。视频概要是使用相对较短的持续时间片段来表示活动的方式之一。到目前为止,研究人员已使用两种主要方法来解决此问题,即通过跟踪运动对象进行提要和通过对运动对象进行聚类来提要。概要输出主要取决于在时间上和空间上对运动对象的跟踪,分割和移动。在许多情况下,跟踪都会失败,因此会产生同一对象的多个轨迹。因此,该对象可能在相同的提要输出中出现和消失多次,这具有误导性。这也导致不连续性,并且常常会使概要的观看者感到困惑。在本文中,我们提出了一种通过对运动对象的小径进行分组来生成压缩视频概要的新方法。分组有助于产生一个大纲,其中按时间顺序相关的对象与有意义的时空关系一起出现。当在公开可用的数据集视频以及内部数据集视频上进行测试时,我们提出的方法会产生连续的,但不太混乱的概要。

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