Adaptive motion estimation using local measures of texture and similarity

S. Dockstader, A. Tekalp
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引用次数: 2

Abstract

Traditional approaches to the estimation of motion in video sequences have relied on the appropriate selection of various algorithm parameters. This dependence becomes a prohibitive drawback in applications where automation is desirable or necessary or in sequences where a single set of parameters can not achieve sufficiently accurate results. We investigate a number of techniques for locally adapting both the spatio-temporal filters and the hierarchical structure used in the estimation of optical flow. The surviving technique utilizes projected active contours and gradient-based Chamfer distance images to adapt the filters and a temporally-based Kolmogorov-Smirnov metric to locally adapt the hierarchical structure. The advantages of using these adaptive variations are demonstrated on articulated and self-occluding motion.
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基于纹理和相似度的局部自适应运动估计
传统的视频序列运动估计方法依赖于各种算法参数的适当选择。在需要自动化或需要自动化的应用中,或者在单组参数不能获得足够精确结果的序列中,这种依赖性成为一个令人望而却步的缺点。我们研究了一些用于光流估计的局部适应时空滤波器和分层结构的技术。生存技术利用投影的活动轮廓和基于梯度的倒角距离图像来适应滤波器,并利用基于时间的Kolmogorov-Smirnov度量来局部适应分层结构。在关节运动和自咬合运动中证明了使用这些自适应变化的优点。
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