基于一般运动统计的运动先验

RockHun Do, In-So Kweon
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引用次数: 0

摘要

在计算机视觉领域中,运动估计在场景匹配、同时定位与映射(SLAM)中起着重要的作用。在BMA(块匹配算法)视频压缩中,运动估计也很重要。运动先验可能是对下一个运动的初步猜测,它对运动的估计程度有影响。在许多应用中,运动模型被假定为匀速高斯模型。在本文中,我们提出了一种新的基于一般运动统计的运动模型,并证明了该模型有助于提高运动估计的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Motion prior based on general motion statistics
Motion estimation plays an important role in scene matching, SLAM (Simultaneously Localization And Mapping) in computer vision field. In BMA (Block Matching Algorithm) for the video compression, motion estimation is also considerable. Motion prior which could be an initial guess for the next motion has an effect on how well motion is estimated. In many applications, motion model is assumed to be Gaussian model with constant velocity. In this paper, we propose a new motion model based on general motion statistics and demonstrate proposed motion model helps motion estimation become more accurate.
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