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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >A region-based selective optical flow back-projection for genuine motion vector estimation
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A region-based selective optical flow back-projection for genuine motion vector estimation

机译:真正运动矢量估计的基于区域的选择性光流反投影

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摘要

Motion vector plays one significant feature in moving object segmentation. However, the motion vector in this application is required to represent the actual motion displacement, rather than regions of visually significant similarity. In this paper, region-based selective optical flow back-projection (RSOFB) which back-projects optical flows in a region to restore the region's motion vector from gradient-based optical flows, is proposed to obtain genuine motion displacement. The back-projection is performed based on minimizing the projection mean square errors of the motion vector on gradient directions. As optical flows of various magnitudes and directions provide various degrees of reliability in the genuine motion restoration, the optical flows to be used in the RSOFB are optimally selected based on their sensitivity to noises and their tendency in causing motion estimation errors. In this paper a deterministic solution is also derived for performing the minimization and obtaining the genuine motion magnitude and motion direction. (c) 2006 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:运动矢量在运动对象分割中起着重要的作用。但是,此应用中的运动矢量必须代表实际的运动位移,而不是视觉上明显相似的区域。本文提出了一种基于区域的选择性光流反投影(RSOFB)技术,它可以将基于区域的光流反投影,从而从基于梯度的光流中恢复出区域的运动矢量,从而获得真正的运动位移。基于最小化运动矢量在梯度方向上的投影均方误差来执行反投影。由于各种大小和方向的光流在真正的运动恢复中提供了不同程度的可靠性,因此基于RSOFB对噪声的敏感性以及它们引起运动估计误差的趋势,可以最佳地选择RSOFB中使用的光流。在本文中,还导出了确定性解决方案,以执行最小化并获得真正的运动幅度和运动方向。 (c)2006模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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