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多变量精度评估无人机成像调查:以投资区为例。

Multi-Variant Accuracy Evaluation of UAV Imaging Surveys: A Case Study on Investment Area.

机构信息

Institute of Geodesy, University of Warmia and Mazury in Olsztyn, 10-719 Olsztyn, Poland.

出版信息

Sensors (Basel). 2019 Nov 28;19(23):5229. doi: 10.3390/s19235229.

Abstract

The main focus of the presented study is a multi-variant accuracy assessment of a photogrammetric 2D and 3D data collection, whose accuracy meets the appropriate technical requirements, based on the block of 858 digital images (4.6 cm ground sample distance) acquired by Trimble UX5 unmanned aircraft system equipped with Sony NEX-5T compact system camera. All 1418 well-defined ground control and check points were a posteriori measured applying Global Navigation Satellite Systems (GNSS) using the real-time network method. High accuracy of photogrammetric products was obtained by the computations performed according to the proposed methodology, which assumes multi-variant images processing and extended error analysis. The detection of blurred images was preprocessed applying Laplacian operator and Fourier transform implemented in Python using the Open Source Computer Vision library. The data collection was performed in Pix4Dmapper suite supported by additional software: in the bundle block adjustment (results verified using RealityCapure and PhotoScan applications), on the digital surface model (CloudCompare), and georeferenced orthomosaic in GeoTIFF format (AutoCAD Civil 3D). The study proved the high accuracy and significant statistical reliability of unmanned aerial vehicle (UAV) imaging 2D and 3D surveys. The accuracy fulfills Polish and US technical requirements of planimetric and vertical accuracy (root mean square error less than or equal to 0.10 m and 0.05 m).

摘要

本研究的主要重点是对摄影测量 2D 和 3D 数据采集进行多变量精度评估,其精度符合适当的技术要求,基于 Trimble UX5 无人机系统采集的 858 张数字图像(地面采样距离 4.6 厘米)块,该系统配备了索尼 NEX-5T 紧凑型系统相机。所有 1418 个定义明确的地面控制点和检查点均采用全球导航卫星系统(GNSS)通过实时网络方法进行了事后测量。通过根据所提出的方法进行计算,获得了摄影测量产品的高精度,该方法假设进行多变量图像处理和扩展误差分析。使用 Python 中的 Laplacian 算子和傅里叶变换(使用开源计算机视觉库)对模糊图像进行了预处理检测。数据采集在 Pix4Dmapper 套件中完成,该套件由附加软件支持:在捆绑块调整中(使用 RealityCapure 和 Phot oScan 应用程序进行验证)、在数字表面模型上(CloudCompare)以及地理参考正射镶嵌图(GeoTIFF 格式)(AutoCAD Civil 3D)。该研究证明了无人机(UAV)成像 2D 和 3D 测量的高精度和显著的统计可靠性。精度符合波兰和美国的平面和垂直精度技术要求(均方根误差小于或等于 0.10 米和 0.05 米)。

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