Positioning Improvement for Spaceborne Laser Footprint Based on Precisely Terrain Data

Chaopeng Xu, Junfeng Xie, Xiaomeng Yang, Xin Lv
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Abstract

Abstract. Spaceborne laser altimetry represents a novel active remote sensing technology applicable to earth observation, which together with imaging spectroscopy and synthetic aperture radar as a core technology for data acquisition in the earth observation systems. However, the accuracy of horizontal positioning for laser footprints from spaceborne laser altimeters declines due to various factors such as the changes in the orbital environment and the deterioration of performance. Moreover, the limited frequency of in-orbit calibration of the spaceborne laser altimeters and the non-disclosure of calibration parameters mean that users are heavily reliant on positioning accuracy of the altimetry data provided. To address this issue, a new algorithm is proposed in this study for enhancing the accuracy of horizontal positioning for laser footprints in the absence of satellite altimeter pointing and ranging parameters. In this algorithm, high-resolution DSM is taken as the reference terrain data to take advantage of the higher precision in elevation over horizontal positioning of the laser footprints. By adjusting the horizontal position of the laser footprint within a small area, the algorithm achieves the optimal alignment of laser elevation data with the reference terrain. Then, the resulting shift in the horizontal position of the laser footprints is referenced to correct their horizontal positioning during that period. Based on the high-accuracy DSM data collected from the Xinjiang autonomous region in China and the data collected by the GF-7 satellite, simulation experiments are performed in this study to analyze and validate the proposed algorithm. According to the experimental results, the horizontal accuracy of the laser footprints improves significantly from 12.56 m to 3.11 m after optimization by the proposed method. With the elimination of 9.45 m horizontal error, accuracy is improved by 75.23%. This method is demonstrated as effective in further optimizing the horizontal position of laser altimetry data products in the absence of altimeter parameters and original data, which promotes the application of spaceborne laser data.
基于精确地形数据的空间激光足迹定位改进
摘要星载激光测高仪是一种适用于地球观测的新型主动遥感技术,它与成像光谱仪和合成孔径雷达一起成为地球观测系统中数据采集的核心技术。然而,由于轨道环境变化和性能退化等各种因素,星载激光测高仪对激光足迹的水平定位精度会下降。此外,星载激光测高计的在轨校准频率有限,而且校准参数不公开,这意味着用户在很大程度上依赖于所提供的测高数据的定位精度。为解决这一问题,本研究提出了一种新算法,用于在没有卫星测高仪指向和测距参数的情况下提高激光足迹的水平定位精度。在该算法中,高分辨率 DSM 被用作参考地形数据,以利用高程精度高于激光足迹水平定位精度的优势。通过在小范围内调整激光足迹的水平位置,该算法实现了激光高程数据与参考地形的最佳对齐。然后,以激光足迹水平位置的偏移为参照,校正激光足迹在这段时间内的水平定位。本研究以从中国新疆自治区采集的高精度 DSM 数据和 GF-7 卫星采集的数据为基础,进行了模拟实验,以分析和验证所提出的算法。实验结果表明,采用所提出的方法进行优化后,激光足迹的水平精度从 12.56 米显著提高到 3.11 米。由于消除了 9.45 米的水平误差,精度提高了 75.23%。在没有测高仪参数和原始数据的情况下,该方法能有效地进一步优化激光测高数据产品的水平位置,促进了空间激光数据的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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