Motion Guided LiDAR-Camera Self-calibration and Accelerated Depth Upsampling for Autonomous Vehicles

被引:0
作者
Juan Castorena
Gintaras V. Puskorius
Gaurav Pandey
机构
[1] Ford Motor Company,Robotics and AI Laboratory
来源
Journal of Intelligent & Robotic Systems | 2020年 / 100卷
关键词
Calibration; Depth reconstruction; Super-resolution; Autonomous vehicles; Lidar; Camera; Multimoda; Sensor fusion; Motion;
D O I
暂无
中图分类号
学科分类号
摘要
This work proposes a novel motion guided method for targetless self-calibration of a LiDAR and camera and use the re-projection of LiDAR points onto the image reference frame for real-time depth upsampling. The calibration parameters are estimated by optimizing an objective function that penalizes distances between 2D and re-projected 3D motion vectors obtained from time-synchronized image and point cloud sequences. For upsampling, a simple, yet effective and time efficient formulation that minimizes depth gradients subject to an equality constraint involving the LiDAR measurements is proposed. Validation is performed on recorded real data from urban environments and demonstrations that our two methods are effective and suitable to mobile robotics and autonomous vehicle applications imposing real-time requirements is shown.
引用
收藏
页码:1129 / 1138
页数:9
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