首页> 外文期刊>International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences >AUTOMATIC EVALUATION OF THE INITIAL GEOPOSITIONING ACCURACY FOR LARGE AREA PLANETARY REMOTE SENSING IMAGES
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AUTOMATIC EVALUATION OF THE INITIAL GEOPOSITIONING ACCURACY FOR LARGE AREA PLANETARY REMOTE SENSING IMAGES

机译:大面积行星遥感图像自动评估初始地理定位精度

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The photogrammetric processing of large area planetary remote sensing images is still a very challenging work. In addition to the lack of ground control data and poor tie points extraction, the insufficient knowledge of the initial geopositioning accuracy of the planetary images also increases the difficulty of processing. This paper presents an automatic evaluation method of the initial geopositioning accuracy for large area planetary remote sensing images. The accuracy evaluation method was conducted through image matching on approximate orthophotos derived using coarse resolution digital elevation model (DEM). To improve the orthophotos generation efficiency of linear pushbroom images, a fast ground-to-image transformation algorithm and multi-threaded parallel computing are adopted. The classical normalized cross correlation (NCC) and pyramid matching schemes are used to perform image matching between overlapping orthophotos. Because the conjugate points on orthophotos contain geographic coordinates, we can derive the statistics information (e.g., maximum errors, mean errors and standard deviation) about the geopositioning accuracy of the planetary images. Although it’s actually an evaluation result of relative accuracy, the quantitative geopositioning accuracy information of stereopairs can be used to (1) specify the search window size and the starting position of conjugate points for tie points extraction; (2) set the weight value of bundle adjustment; and (3) identify images with abnormal geopositioning accuracy. Tens of Mars Express (MEX) High Resolution Stereo Camera (HRSC) images were used to conduct the test. The experimental results demonstrate that the proposed method shows high computational efficiency and automation degree. The automatic evaluation of the initial geopositioning accuracy of the planetary images is helpful to produce large area planetary mapping products.
机译:大面积行星遥感图像的摄影测量处理仍然是一个非常具有挑战性的工作。除了缺乏地面控制数据和延长点提取不良,外形图像的初始地理定位精度的知识不足也会增加加工的难度。本文介绍了大面积平行遥感图像的初始地理定位精度的自动评估方法。通过使用粗糙分辨率数字高度模型(DEM)导出的近似正性粒子的图像匹配进行精度评估方法。为了提高线性推车图像的正极光电极的生成效率,采用了快速地 - 图像变换算法和多螺纹并行计算。经典的归一化互相关(NCC)和金字塔匹配方案用于在重叠的邻芯片之间进行图像匹配。因为官僚点上的缀合点包含地理坐标,所以我们可以导出关于行星图像的地理定位准确性的统计信息(例如,最大误差,均值误差和标准偏差)。虽然它实际上是相对精度的评估结果,但是立体图像的定量地理定位精度信息可用于(1)指定搜索窗口尺寸和用于连接点提取的共轭点的起始位置; (2)设置捆绑调整的重量值; (3)识别具有异口定位精度异常的图像。数十火星表达(MEX)高分辨率立体声相机(HRSC)图像用于进行测试。实验结果表明,该方法显示了高计算效率和自动化程度。对行星图像的初始地理定位精度的自动评估有助于生产大面积的行星映射产品。

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