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Video object segmentation: a compressed domain approach

机译:视频对象分割:一种压缩域方法

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This paper addresses the problem of extracting video objects from MPEG compressed video. The only cues used for object segmentation are the motion vectors which are sparse in MPEG. A method for automatically estimating the number of objects and extracting independently moving video objects using motion vectors is presented here. First, the motion vectors are accumulated over a few frames to enhance the motion information, which are further spatially interpolated to get dense motion vectors. The final segmentation, using the dense motion vectors, is obtained by applying the expectation maximization (EM) algorithm. A block-based affine clustering method is proposed for determining the number of appropriate motion models to be used for the EM step and the segmented objects are temporally tracked to obtain the video objects. Finally, a strategy for edge refinement is proposed to extract the precise object boundaries. Illustrative examples are provided to demonstrate the efficacy of the approach. A prominent application of the proposed method is that of object-based coding, which is part of the MPEG-4 standard.
机译:本文解决了从MPEG压缩视频中提取视频对象的问题。用于对象分割的唯一提示是在MPEG中稀疏的运动矢量。这里提出了一种用于自动估计对象数量并使用运动矢量提取独立运动视频对象的方法。首先,将运动矢量累积在几个帧上以增强运动信息,然后在空间上对其进行插值以获得密集的运动矢量。使用密集运动矢量的最终分割是通过应用期望最大化(EM)算法获得的。提出了一种基于块的仿射聚类方法,用于确定要用于EM步骤的适当运动模型的数量,并对分割的对象进行时间跟踪以获得视频对象。最后,提出了一种边缘细化策略,以提取精确的对象边界。提供了说明性示例以证明该方法的有效性。该方法的一个突出应用是基于对象的编码,它是MPEG-4标准的一部分。

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