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首页> 外文期刊>IEEE Transactions on Circuits and Systems for Video Technology >Semiautomatic video object segmentation using VSnakes
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Semiautomatic video object segmentation using VSnakes

机译:使用VSnakes的半自动视频对象分割

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摘要

Video object segmentation and tracking are essential for content-based video processing. This paper presents a framework for a semiautomatic approach to this problem. A semantic video object is initialized with human assistance in a key frame. The video object is then tracked and segmented automatically in the following frames. A new active contour model, VSnakes, is introduced as a segmentation method in this framework. The active contour energy is defined so as to reflect the energy difference between two contours instead of the energy of a single contour. Multiple-resolution wavelet decomposition is applied in generating the edge energy of the image frame. Contour relaxation is used to deal with the object deformation frame by frame, and the Viterbi algorithm is used to update the contour path during contour relaxation. Compared to the original snakes algorithm, semiautomatic video object segmentation with the VSnakes algorithm resulted in improved performance in terms of video object shape distortion (1.4% versus 2.9% in one experiment), which suggests that it could be a useful tool in many content-based video applications, e.g., MPEG-4 video object generation and medical imaging.
机译:视频对象的分段和跟踪对于基于内容的视频处理至关重要。本文提出了一种针对该问题的半自动方法的框架。在关键帧中借助人工协助来初始化语义视频对象。然后在以下帧中自动跟踪和分割视频对象。在此框架中,引入了新的主动轮廓模型VSnakes作为分割方法。有效轮廓能量被定义为反映两个轮廓之间的能量差而不是单个轮廓的能量。将多分辨率小波分解应用于生成图像帧的边缘能量。轮廓松弛用于逐帧处理对象变形,维特比算法用于在轮廓松弛期间更新轮廓路径。与原始的snakes算法相比,使用VSnakes算法进行半自动视频对象分割可以提高视频对象形状失真的性能(在一个实验中为1.4%,而在实验中为2.9%),这表明它可以在许多内容中用作有用的工具,基于视频的应用程序,例如MPEG-4视频对象生成和医学成像。

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