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An Ego-Motion Detection System Employing Directional-Edge-Based Motion Field Representations

机译:利用基于方向边缘的运动场表示的自我运动检测系统

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In this paper, a motion field representation algorithm based on directional edge information has been developed. This work is aiming at building an ego-motion detection system using dedicated VLSI chips developed for real time motion field generation at low powers[1],[2]. Directional edge maps are utilized instead of original gray-scale images to represent local features of an image and to detect the local motion component in a moving image sequence. Motion detection by edge histogram matching has drastically reduced the computational cost of block matching, while achieving a robust performance of the ego-motion detection system under dynamic illumination variation. Two kinds of feature vectors, the global motion vector and the component distribution vectors, are generated from a motion field at two different scales and perspectives. They are jointly utilized in the hierarchical classification scheme employing multiple-clue matching. As a result, the problems of motion ambiguity as well as motion field distortion caused by camera shaking during video capture have been resolved. The performance of the ego-motion detection system was evaluated under various circumstances, and the effectiveness of this work has been verified.
机译:本文提出了一种基于方向边缘信息的运动场表示算法。这项工作的目标是建立一个使用专用VLSI芯片开发的自我运动检测系统,该芯片用于在低功率下实时生成运动场[1],[2]。利用方向性边缘图代替原始灰度图像来表示图像的局部特征并检测运动图像序列中的局部运动分量。通过边缘直方图匹配进行运动检测已大大降低了块匹配的计算成本,同时在动态光照变化下实现了自我运动检测系统的强大性能。从运动场以两种不同的比例和角度生成两种特征向量,即全局运动向量和分量分布向量。它们在采用多线索匹配的层次分类方案中共同使用。结果,解决了运动模糊性以及在视频捕获期间由照相机抖动引起的运动场失真的问题。在各种情况下对自我运动检测系统的性能进行了评估,并验证了这项工作的有效性。

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