SLAMB&MAI: a comprehensive methodology for SLAM benchmark and map accuracy improvement

IF 1.9 4区 计算机科学 Q3 ROBOTICS Robotica Pub Date : 2024-01-30 DOI:10.1017/s0263574724000079
Shengshu Liu, Erhui Sun, Xin Dong
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Abstract

SLAM Benchmark plays a pivotal role in the field by providing a common ground for performance evaluation. In this paper, a novel methodology of simultaneous localization and mapping benchmark and map accuracy improvement (SLAMB&MAI) is introduced. It can objectively evaluate errors of localization and mapping, and further improve map accuracy by utilizing evaluation results as feedback. The proposed benchmark transforms all elements into a global frame and measures the errors between them. The comprehensiveness consists in the benchmark of both localization and mapping, and the objectivity consists in the consideration of the correlation between localization and mapping by the preservation of the original pose relations between all reference frames. The map accuracy improvement is realized by first obtaining the optimization that minimizes the errors between the estimated trajectory and ground truth trajectory and then applying it to the estimated map. The experimental results showed that the map accuracy can be improved by an average of 15%. The optimization that yields minimal localization errors is obtained by the proposed Centre Point Registration-Iterative Closest Point (CPR-ICP). This proposed Iterative Closest Point (ICP) variant pre-aligns two point clouds by their centroids and least square planes and then uses traditional ICP to minimize the error between them. The experimental results showed that CPR-ICP outperformed traditional ICP, especially in cases involving large-scale environments. To the extent of our knowledge, this is the first work that can not only objectively benchmark both localization and mapping but also revise the estimated map and increase its accuracy, which provides insights into the acquisition of ground truth map and robot navigation.

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SLAMB&MAI:用于 SLAM 基准和地图精度改进的综合方法
SLAM 基准为性能评估提供了一个共同基础,在该领域发挥着举足轻重的作用。本文介绍了一种新颖的同步定位与绘图基准和地图精度改进(SLAMB&MAI)方法。它可以客观地评估定位和绘图的误差,并利用评估结果作为反馈进一步提高地图精度。所提出的基准将所有元素转换为一个全局框架,并测量它们之间的误差。全面性包括定位和映射的基准,客观性包括通过保留所有参考帧之间的原始姿态关系来考虑定位和映射之间的相关性。地图精度的提高是通过首先获得使估计轨迹与地面实况轨迹之间误差最小的优化值,然后将其应用于估计地图来实现的。实验结果表明,地图精度平均可提高 15%。所提出的中心点注册-迭代最接近点(CPR-ICP)可以获得最小定位误差的优化结果。这种拟议的迭代最邻近点(ICP)变体通过两个点云的中心点和最小平方平面对两个点云进行预对齐,然后使用传统的 ICP 使它们之间的误差最小化。实验结果表明,CPR-ICP 的性能优于传统的 ICP,尤其是在涉及大规模环境的情况下。据我们所知,这是第一项不仅能客观地确定定位和绘图基准,还能修正估计地图并提高其精度的工作,这为获取地面实况地图和机器人导航提供了启示。
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来源期刊
Robotica
Robotica 工程技术-机器人学
CiteScore
4.50
自引率
22.20%
发文量
181
审稿时长
9.9 months
期刊介绍: Robotica is a forum for the multidisciplinary subject of robotics and encourages developments, applications and research in this important field of automation and robotics with regard to industry, health, education and economic and social aspects of relevance. Coverage includes activities in hostile environments, applications in the service and manufacturing industries, biological robotics, dynamics and kinematics involved in robot design and uses, on-line robots, robot task planning, rehabilitation robotics, sensory perception, software in the widest sense, particularly in respect of programming languages and links with CAD/CAM systems, telerobotics and various other areas. In addition, interest is focused on various Artificial Intelligence topics of theoretical and practical interest.
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