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Science Letters:Visual odometry for road vehicles—feasibility analysis 被引量:2
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作者 SOTELO Miguel-angel GARCíA Roberto +4 位作者 PARRA Ignacio FERNNDEZ David GAVILN Miguel LVAREZ Sergio NARANJO José-eugenio 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2007年第12期2017-2020,共4页
Estimating the global position of a road vehicle without using GPS is a challenge that many scientists look forward to solving in the near future. Normally, inertial and odometry sensors are used to complement GPS mea... Estimating the global position of a road vehicle without using GPS is a challenge that many scientists look forward to solving in the near future. Normally, inertial and odometry sensors are used to complement GPS measures in an attempt to provide a means for maintaining vehicle odometry during GPS outage. Nonetheless, recent experiments have demonstrated that computer vision can also be used as a valuable source to provide what can be denoted as visual odometry. For this purpose, vehicle motion can be estimated using a non-linear, photogrametric approach based on RAndom SAmple Consensus (RANSAC). The results prove that the detection and selection of relevant feature points is a crucial factor in the global performance of the visual odometry algorithm. The key issues for further improvement are discussed in this letter. 展开更多
关键词 3D visual odometry Ego-motion estimation RAndom SAmple Consensus (RANSAC) photogrametric approach
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