A practical method for ego vehicle motion estimation from video

Catalin Golban, Cosmin Mitran, S. Nedevschi
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引用次数: 6

Abstract

This paper presents an original and practical method for estimating the rotation and the translation of a vehicle using video data. Imposing a movement constraint on the rotation matrix, we obtain a powerful method for estimating the rotation of the vehicle from frame to frame. Our algorithm takes as input a monocular video sequence on which originally combines procedures for feature detection and filtering, optical flow, epipolar geometry and estimation of the rotation from the obtained essential matrix. Furthermore, the obtained rotation and stereo data are used for computing the translation of the vehicle. Experiments have been performed using various urban traffic scenes which contain both curves and straight line roads.
一种实用的基于视频的自我车辆运动估计方法
本文提出了一种新颖实用的利用视频数据估计车辆旋转和平移的方法。在旋转矩阵上施加运动约束,得到了一种有效的估计车辆在不同帧间旋转的方法。我们的算法以单目视频序列作为输入,该序列最初结合了特征检测和滤波、光流、极几何和从获得的本质矩阵估计旋转的过程。此外,获得的旋转和立体数据用于计算车辆的平移。实验已经在包含曲线和直线道路的各种城市交通场景中进行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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