Catadioptric omnidirectional thermal odometry in dynamic environment

IF 10.6 1区 地球科学 Q1 GEOGRAPHY, PHYSICAL ISPRS Journal of Photogrammetry and Remote Sensing Pub Date : 2024-07-31 DOI:10.1016/j.isprsjprs.2024.07.021
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Abstract

This paper presents a catadioptric omnidirectional thermal odometry (COTO) system that estimates the six degrees of freedom (DoF) pose of a camera using only omnidirectional thermal images in visually degraded, fast-motion, and dynamic environments. First, we design and fabricate a central hyperbolic catadioptric omnidirectional thermal camera that captures surrounding thermal images with 360° horizontal field of view (FoV), and improve the omnidirectional camera model and calibration method to obtain high-precision camera intrinsic parameter. Second, we propose the epipolar curve constraint combining with omnidirectional thermal object detection to significantly reduce the interference of moving objects on pose estimation. Third, the implemented COTO pipeline consists of photometric calibration, dynamic region removal, tracking and mapping to overcome the drawbacks of photometric inconsistency and large distortion in omnidirectional thermal images. Experiments have been conducted on a total of 17 sequences of Lab, Outdoor and Driving, amounting to more than 60,000 omnidirectional thermal images of real environments. The experimental results indicate that the proposed COTO system has excellent localization accuracy and unparalleled robustness over the current state-of-the-art methods. The average localization accuracy measured by the absolute trajectory error (ATE) is less than 15 cm from the ground truth in both Lab and Outdoor sequences. In addition, COTO was the only system with complete and successful tracking in all sequences. The system can be used as an innovative localization solution, particularly in challenging environments with changes in ambient light, rapid vehicle motion, and moving object interference, which can be a difficult problem for visual odometry to solve.

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动态环境中的双向全方向热测距仪
本文介绍了一种双曲面全向热像仪测距(COTO)系统,该系统可在视觉衰减、快速运动和动态环境中,仅利用全向热图像估算热像仪的六个自由度(DoF)姿态。首先,我们设计并制造了一种中央双曲双曲面全向热像仪,该热像仪可捕捉周围具有水平视场(FoV)的热图像,并改进了全向热像仪模型和校准方法,从而获得了高精度的热像仪固有参数。其次,我们提出了结合全向热物体检测的外极曲线约束,以显著降低移动物体对姿态估计的干扰。第三,实现的 COTO 流水线包括光度校准、动态区域移除、跟踪和映射,以克服全向热图像中光度不一致和较大失真的缺点。我们在实验室、室外和驾驶等 17 个序列上进行了实验,共获得了 60,000 多张真实环境的全向红外图像。实验结果表明,与目前最先进的方法相比,拟议的 COTO 系统具有出色的定位精度和无与伦比的鲁棒性。在实验室和室外序列中,以绝对轨迹误差(ATE)测量的平均定位精度与地面实况的误差均小于 15 厘米。此外,COTO 是唯一一个在所有序列中都能成功完成跟踪的系统。该系统可作为一种创新的定位解决方案,特别是在环境光线变化、车辆快速运动和移动物体干扰等具有挑战性的环境中,这些都是视觉里程测量难以解决的问题。
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来源期刊
ISPRS Journal of Photogrammetry and Remote Sensing
ISPRS Journal of Photogrammetry and Remote Sensing 工程技术-成像科学与照相技术
CiteScore
21.00
自引率
6.30%
发文量
273
审稿时长
40 days
期刊介绍: The ISPRS Journal of Photogrammetry and Remote Sensing (P&RS) serves as the official journal of the International Society for Photogrammetry and Remote Sensing (ISPRS). It acts as a platform for scientists and professionals worldwide who are involved in various disciplines that utilize photogrammetry, remote sensing, spatial information systems, computer vision, and related fields. The journal aims to facilitate communication and dissemination of advancements in these disciplines, while also acting as a comprehensive source of reference and archive. P&RS endeavors to publish high-quality, peer-reviewed research papers that are preferably original and have not been published before. These papers can cover scientific/research, technological development, or application/practical aspects. Additionally, the journal welcomes papers that are based on presentations from ISPRS meetings, as long as they are considered significant contributions to the aforementioned fields. In particular, P&RS encourages the submission of papers that are of broad scientific interest, showcase innovative applications (especially in emerging fields), have an interdisciplinary focus, discuss topics that have received limited attention in P&RS or related journals, or explore new directions in scientific or professional realms. It is preferred that theoretical papers include practical applications, while papers focusing on systems and applications should include a theoretical background.
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