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首页> 外文期刊>Geoscience and Remote Sensing, IEEE Transactions on >Automatic Orthorectification of High-Resolution Optical Satellite Images Using Vector Roads
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Automatic Orthorectification of High-Resolution Optical Satellite Images Using Vector Roads

机译:使用矢量路自动对高分辨率光学卫星图像进行正射校正

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This paper presents a completely automatic processing chain for orthorectification of optical pushbroom sensors. The procedure is robust and works without manual intervention from raw satellite image to orthoimage. It is modularly divided in four main steps: metadata extraction, automatic ground control point (GCP) extraction, geometric modeling, and orthorectification. The GCP extraction step uses georeferenced vector roads as a reference and produces a file with a list of points and their accuracy estimation. The physical geometric model is based on collinearity equations and works with sensor-corrected (level 1) optical satellite images. It models the sensor position and attitude with second-order piecewise polynomials depending on the acquisition time. The exterior orientation parameters are estimated in a least squares adjustment, employing random sample consensus and robust estimation algorithms for the removal of erroneous points and fine-tuning of the results. The images are finally orthorectified using a digital elevation model and positioned in a national coordinate system. The usability of the method is presented by testing three RapidEye images of regions with different terrain configurations. Several tests were carried out to verify the efficiency of the procedure and to make it more robust. Using the geometric model, subpixel accuracy on independent check points was achieved, and positional accuracy of orthoimages was around one pixel. The proposed procedure is general and can be easily adapted to various sensors.
机译:本文提出了一种用于光学推扫式传感器的正射校正的全自动处理链。该过程是鲁棒的,并且无需人工干预即可从原始卫星图像转换为正射图像。它按模块分为四个主要步骤:元数据提取,自动地面控制点(GCP)提取,几何建模和正射校正。 GCP提取步骤使用地理参考矢量道路作为参考,并生成包含点列表及其精确度估算值的文件。物理几何模型基于共线性方程式,并适用于传感器校正的(1级)光学卫星图像。它根据采集时间使用二阶分段多项式对传感器的位置和姿态进行建模。外部方向参数以最小二乘平差进行估计,采用随机样本共识和鲁棒的估计算法来去除错误点和对结果进行微调。最终使用数字高程模型对图像进行正射校正并放置在国家坐标系中。通过测试具有不同地形配置的区域的三张RapidEye图像来展示该方法的可用性。进行了几次测试,以验证该过程的效率并使其更加可靠。使用几何模型,可以实现独立检查点上的亚像素精度,并且正射像的位置精度约为一个像素。所提出的过程是通用的,并且可以容易地适用于各种传感器。

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