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Abstract:
针对激光雷达非匀速运动畸变问题,提出一种融合视觉惯性里程计和激光雷达里程计,进行三维地图构建与定位(simultaneous localization and mapping,SLAM)方法.经预处理和时间戳对齐后的数据,应用视觉估计和惯性测量单元(inertial measurement unit,IMU)预积分对视觉进行初始化,通过约束的滑窗优化和视觉里程计的高频位姿,将传统雷达匀速运动模型改进为多阶段匀加速模型,从而降低点云畸变.同时,利用列文伯格-马夸尔特(Levenberg-Marquardt,LM)方法优化激光里程计,提出一种融合词袋模型的回环检测方法,最终实现三维地图构建.基于实车试验数据,通过与LEGO-LOAM(lightweight and ground-optimized lidar odometry and map-ping on variable terrain)方法的结果对比,本文方法在平均误差和误差中位数上分别提升了16%和23%.
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福州大学学报(自然科学版)
ISSN: 1000-2243
CN: 35-1337/N
Year: 2022
Issue: 1
Volume: 50
Page: 82-88
Cited Count:
WoS CC Cited Count: 0
SCOPUS Cited Count:
ESI Highly Cited Papers on the List: 0 Unfold All
WanFang Cited Count: -1
Chinese Cited Count:
30 Days PV: 23
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