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Unsupervised video object segmentation and tracking based on new edge features

机译:基于新边缘特征的无监督视频对象分割和跟踪

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摘要

We present an efficient video segmentation and tracking strategy based on edge information to assist object-based video coding, motion estimation, and motion compensation for MPEG-4 and MPEG-7. The proposed algorithm utilizes the human visual perception to provide edge information. Three parameters are introduced and described based on edge information from the analysis of a local histogram. An edge function is defined to generate the edge information map, which can be thought as the gradient image. Then, an improved marker-based region growing and merging techniques are derived to separate the image regions. An efficient temporal segmentation and tracking algorithm is also developed in time domain when the initial segmentation is given. The proposed algorithm is tested on several standard sequences and demonstrates high reliability for video object segmentation and tracking.
机译:我们提出了一种基于边缘信息的有效视频分割和跟踪策略,以协助基于对象的视频编码,运动估计以及针对MPEG-4和MPEG-7的运动补偿。所提出的算法利用人类的视觉感知来提供边缘信息。基于来自局部直方图的分析的边缘信息,引入并描述了三个参数。定义了一个边缘函数以生成边缘信息图,可以将其视为梯度图像。然后,派生出一种改进的基于标记的区域生长和合并技术来分离图像区域。当给出初始分割时,在时域中也开发了一种有效的时间分割和跟踪算法。该算法在几种标准序列上进行了测试,证明了视频对象分割和跟踪的高可靠性。

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