首页> 外文会议>International Conference on Signal Processing(ICSP'06); 20061116-20; Guilin(CN) >Moving Object Segmentation Using dynamic 3D Graph Cuts and GMM
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Moving Object Segmentation Using dynamic 3D Graph Cuts and GMM

机译:使用动态3D图形切割和GMM进行运动对象分割

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摘要

It is one of the most challenging problems in computer vision how to segment moving objects accurately. In this paper, we present a novel approach to segment moving objects with edge information and temporal information using 3D Graph cuts model when cameras is fixed. Moving object segmentation is modeled as finding a minimum energy of 3D graph. Our algorithm assigns n-links in 3D graph according to spatial gradient in same frame and temporal gradient in neighboring frames. Gaussian mixture model is used to assign t-links with edge difference term and shadow elimination term. Finally, a dynamic graph cuts algorithm is used to find the minimum cut of 3D graph and segments moving objects in image sequences. Experiments show that our approach achieves nice performance.
机译:如何准确地分割运动对象是计算机视觉中最具挑战性的问题之一。在本文中,我们提出了一种在摄像机固定时使用3D Graph Cuts模型用边缘信息和时间信息分割运动对象的新颖方法。运动对象分割建模为寻找3D图的最小能量。我们的算法根据同一帧中的空间梯度和相邻帧中的时间梯度在3D图形中分配n个链接。高斯混合模型用于为t-link分配边缘差项和阴影消除项。最后,使用动态图切割算法来查找3D图的最小切割,并在图像序列中分割运动对象。实验表明,我们的方法取得了很好的性能。

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