COSMO-SkyMed立体倾斜/地距影像的rpc平差模型

Zhen Li, Guo Zhang, H. Pan, Qiang Qiang
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引用次数: 3

摘要

立体SAR图像的使用为生成数字高程模型(dem)提供了一种替代传统立体摄影测量的方法。通常SAR地面距离形式更受商业用户的欢迎,因为不同视角图像的地面像素间距大致相同。因此,倾斜距离和地面距离产品之间不同的数学描述使得立体建模和平差成为一个具有挑战性的目标。先前的工作将传感器模型调整距离和时间参数应用于SAR聚光灯距离图像,有望在2米范围内实现三维制图精度。但是,该方法采用的是直接最小二乘法,对于地距图像过于敏感,对于SAR距离图像的立体复原效果不太理想。本文提出了一种利用少量控制点(CPs)与有理多项式系数(RPC)模型相结合的基于图像的变换(几何校正)方法来提高空间交会精度。首先描述了这种基于rpc的平差方法的发展,该方法实施起来非常实用,可以应用于SAR斜距或地距产品。通过在站点内放置几个分布良好的三面体角反射器(cr),并使用COSMO-SkyMed的条带图(SM)模式对这些站点进行成像,验证了交付的倾斜或地面范围产品的建模质量,并评估了三维测绘潜力。
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RPC-based adjustment model for COSMO-SkyMed stereo slant/ground-range images
The use of stereoscopic SAR images offers an alternative to conventional stereo-photogrammetric survey for the generation of Digital Elevation Models (DEMs). Often the SAR ground-range form is more popular with the commercial users, since the pixel spacing on the ground is roughly the same for the different look-angle images. The different mathematical descriptions between the slant-range and ground-range products thus make the stereo modeling and adjustment a challenging objective to deal with. Previous work applied sensor model adjustment of range and timing parameters to SAR spotlight range images, promising 3-D mapping accuracies in the range of 2 m. However, this adopted the direct least squares method, which is too sensitive in the case of the ground-range images, making it less than optimal for SAR range images' stereo restitution. In this paper, an image based transformation (geometric correction) using a small number of control points(CPs) in cooperation with the Rational Polynomial Coefficient (RPC) model to improve the space intersection accuracy is proposed. The development of such an RPC-based adjustment method is first described, which is very practical to implement and can be applied to SAR slant- or ground-range products. By situating several well-distributed trihedral corner reflectors (CRs) within sites and imaging these sites using COSMO-SkyMed's stripmap (SM) mode, the modeling quality of the delivered slant- or ground-range products was validated, and the 3-D mapping potential was also assessed.
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