Motion from images: image matching, parameter estimation and intrinsic stability

J. Weng, T.S. Huang, N. Ahuja
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引用次数: 8

Abstract

Presents an image-matching algorithm that uses multiple attributes associated with a pixel to yield a generally overdetermined system of constraints. taking into account possible structural discontinuities and occlusions. Both top-down and bottom-up data flows are used in a multiresolution computational structure. The matching algorithm computes dense displacement fields and the associated occlusion maps. The motion and structure parameters are estimated through optimal estimation (e.g. maximal likelihood) using the solution of a linear algorithm as an initial guess. To investigate the intrinsic stability of the problem in the presence of noise, a theoretical lower bound on error variance of the estimates, the Cramer-Rao bound, is determined for motion parameters.<>
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从图像运动:图像匹配,参数估计和固有稳定性
提出了一种图像匹配算法,该算法使用与像素相关的多个属性来产生一个通常过度确定的约束系统。考虑到可能的结构不连续和咬合。在多分辨率计算结构中使用自顶向下和自底向上的数据流。匹配算法计算密集位移场和相关的遮挡贴图。利用线性算法的解作为初始猜测,通过最优估计(如最大似然)估计运动和结构参数。为了研究该问题在噪声存在下的固有稳定性,对运动参数确定了估计误差方差的理论下界,即Cramer-Rao界
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Motion estimation from points without correspondences from orthographic projections Object tracking with a moving camera Stereo/motion cues in pre-attentive vision processing-some experiments with random-dot stereographic image sequences Second-order motion perception: space/time separable mechanisms A parallel motion algorithm consistent with psychophysics and physiology
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