Automatic targetless LiDAR–camera calibration: a survey

被引:0
|
作者
Xingchen Li
Yuxuan Xiao
Beibei Wang
Haojie Ren
Yanyong Zhang
Jianmin Ji
机构
[1] University of Science and Technology of China,School of Computer Science and Technology
[2] Hefei Comprehensive National Science Center,Department of Fundamental Research, Institute of Artificial Intelligence
来源
关键词
Calibration; LiDAR; Camera; Automatic; Targetless;
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中图分类号
学科分类号
摘要
The recent trend of fusing complementary data from LiDARs and cameras for more accurate perception has made the extrinsic calibration between the two sensors critically important. Indeed, to align the sensors spatially for proper data fusion, the calibration process usually involves estimating the extrinsic parameters between them. Traditional LiDAR–camera calibration methods often depend on explicit targets or human intervention, which can be prohibitively expensive and cumbersome. Recognizing these weaknesses, recent methods usually adopt the autonomic targetless calibration approach, which can be conducted at a much lower cost. This paper presents a thorough review of these automatic targetless LiDAR–camera calibration methods. Specifically, based on how the potential cues in the environment are retrieved and utilized in the calibration process, we divide the methods into four categories: information theory based, feature based, ego-motion based, and learning based methods. For each category, we provide an in-depth overview with insights we have gathered, hoping to serve as a potential guidance for researchers in the related fields.
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页码:9949 / 9987
页数:38
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