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首页> 外文期刊>Photogrammetric Engineering & Remote Sensing: Journal of the American Society of Photogrammetry >Automated Geometric Correction of High-resolution Pushbroom Satellite Data
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Automated Geometric Correction of High-resolution Pushbroom Satellite Data

机译:高分辨率推扫卫星数据的自动几何校正

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In this article, we present the use of the Automatic Ground control points Extraction technique (AGE) for increasing the automation in the geometric correction of high-resolution satellite imagery. The method is based on an image-to-image matching between the satellite data and an already geocoded image (i.e., a digital orthophoto). By using an adaptive least squares matching algorithm which implements a very robust outlier rejection technique, AGE can automatically measure many hundreds of topographic features (TFs) on the images, whose cartographic coordinates are derived from the geocoded image and elevations are extracted from an associated digital elevation model (DEM). The AGE technique has been tested for different high-resolution data: (a) 0.62-meter QuickBird panchromatic data (basic imagery processing level), (b) 2.5-meter SPOT-5/HRG panchromatic supermode data (standard IB processing level), and (c) 1-meter Ikonos panchromatic data (standard Geo product processing level) collected in theNorthern of Italy, both in flat (Torino Caselle test site) and mountain areas (Lecco test site). Regardless the relative image resolution between the satellite and the aerial data (1-meter) and regardless the processing level of the original satellite data, a similar TFs density has been obtained for both the QuickBird and the SPOT-5/HRG data (4.4 GCPs/km~2 and 4.1 GCPs/km~2) respectively, with a geometric accuracy for the GCPs extracted of 0.90 m for QuickBird and 3.90 m for SPOT-5/HRG. For the Ikonosimagery, AGE extracted a more dense set of GCPS (8.7 GCPs/km~2) but with a lower accuracy (3.19 m). The TFS identified with AGE can be used as GCPs for the rational polynomial coefficients (RPCs) computation and, therefore, for implementing a full automatic orthoimage generation procedure. By using the commercial off-the-shelf software PCI Geomatica~(R) v.9.1, orthoimages have been generated for all datasets. The geometric accuracy was verified on a set of 30 manually measured independent check points(CPs) and assessed a precision of 4.99 m RMSE for QuickBird, 5.99 m RMSE for SPOT-5/HRG, and 8.65 m RMSE for Ikonos. The use of a non-conventional image orthorectification technique implementing a neural network GCPs regularization, tested for the SPOT-5/HRG data, showed the full potential of the AGE method, allowing to obtain a 3.83 m RMSE orthoprojection in a fully automated way.
机译:在本文中,我们介绍了使用自动地面控制点提取技术(AGE)来提高高分辨率卫星图像的几何校正中的自动化程度。该方法基于卫星数据与已经过地理编码的图像(即数字正射影像)之间的图像到图像匹配。通过使用自适应最小二乘匹配算法,该算法实现了非常强大的离群值剔除技术,AGE可以自动测量图像上的数百个地形特征(TF),其制图坐标来自于地理编码图像,而海拔高度则来自相关的数字高程模型(DEM)。 AGE技术已经针对不同的高分辨率数据进行了测试:(a)0.62米的QuickBird全色数据(基本图像处理级别),(b)2.5米的SPOT-5 / HRG全色超模数据(标准IB处理级别), (c)在意大利北部(平坦的(都灵·卡斯蒂尔测试场)和山区(莱科测试场))收集的1米长的Ikonos全色数据(标准的地理产品加工水平)。无论卫星和航空数据之间的相对图像分辨率(1米),还是原始卫星数据的处理水平如何,对于QuickBird和SPOT-5 / HRG数据(4.4 GCP,都已获得相似的TF密度) / km〜2和4.1 GCP / km〜2),对于QuickBird提取的GCP,几何精度分别为0.90 m和SPOT-5 / HRG为3.90 m。对于Ikonosimagery,AGE提取了一套更密集的GCPS(8.7 GCP / km〜2),但精度较低(3.19 m)。用AGE标识的TFS可以用作有理多项式系数(RPC)计算的GCP,因此可以用于实现全自动正射影像生成过程。通过使用现成的商业软件PCI Geomaticav.9.1,已经为所有数据集生成了正射影像。在一组30个手动测量的独立检查点(CP)上验证了几何精度,并评估了QuickBird的4.99 m RMSE,SPOT-5 / HRG的5.99 m RMSE和Ikonos的8.65 m RMSE的精度。通过对SPOT-5 / HRG数据进行测试,使用实现神经网络GCP正则化的非常规图像正射校正技术,显示了AGE方法的全部潜力,从而可以以全自动方式获得3.83 m的RMSE正投影。

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