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用于高分辨率地形测绘的圆形扫描机载盖革模式激光雷达的模拟与设计

Simulation and Design of Circular Scanning Airborne Geiger Mode Lidar for High-Resolution Topographic Mapping.

作者信息

Liu Fanghua, He Yan, Chen Weibiao, Luo Yuan, Yu Jiayong, Chen Yongqiang, Jiao Chongmiao, Liu Meizhong

机构信息

Key Laboratory of Space Laser Communication and Detection Technology, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China.

Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Sensors (Basel). 2022 May 11;22(10):3656. doi: 10.3390/s22103656.

Abstract

Over the last two decades, Geiger-mode lidar (GML) systems have been developing rapidly in defense and commercial applications, demonstrating high point density and great collection efficiency. We presented a circular scanning GML system simulation model for performance prediction and developed a GML system for civilian mapping. The lidar system used an eye-safe fiber laser at 1545 nm coupled with a 64 × 64 pixels photon-counting detector array. A real-time data compression algorithm was implanted to reduce half of the data transmission rate and storage space compared to the uncompressing situation. The GML system can operate at aircraft above-ground levels (AGLs) between 0.35 km and 3 km, and at speeds in excess of 220 km/h. The initial flight tests indicate that the GML system can operate day and night with an area coverage of 366 km/h. The standard deviations of the relative altimetric accuracy and the relative planimetric accuracy are 0.131 m and 0.152 m, respectively. The findings presented in this article guide the implementation of designing an airborne GML system and the data compression method.

摘要

在过去二十年中,盖革模式激光雷达(GML)系统在国防和商业应用中迅速发展,展现出高点数密度和高采集效率。我们提出了一种用于性能预测的圆形扫描GML系统仿真模型,并开发了一种用于民用测绘的GML系统。该激光雷达系统使用了一台波长为1545 nm的人眼安全光纤激光器,搭配一个64×64像素的光子计数探测器阵列。植入了一种实时数据压缩算法,与未压缩情况相比,数据传输速率和存储空间减少了一半。该GML系统可在海拔0.35千米至3千米的飞机上运行,飞行速度超过220千米/小时。初步飞行测试表明,该GML系统可昼夜运行,覆盖面积为366千米/小时。相对测高精度和相对平面精度的标准差分别为0.131米和0.152米。本文的研究结果为机载GML系统的设计实施和数据压缩方法提供了指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/faa2/9147515/973e398990f0/sensors-22-03656-g001.jpg

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