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TIE POINTS EXTRACTION FOR SAR IMAGES BASED ON DIFFERENTIAL CONSTRAINTS

机译:基于差分约束的SAR图像领带点提取

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Automatically extracting tie points (TPs) on large-size synthetic aperture radar (SAR) images is still challenging because the efficiency and correct ratio of the image matching need to be improved. This paper proposes an automatic TPs extraction method based on differential constraints for large-size SAR images obtained from approximately parallel tracks, between which the relative geometric distortions are small in azimuth direction and large in range direction. Image pyramids are built firstly, and then corresponding layers of pyramids are matched from the top to the bottom. In the process, the similarity is measured by the normalized cross correlation (NCC) algorithm, which is calculated from a rectangular window with the long side parallel to the azimuth direction. False matches are removed by the differential constrained random sample consensus (DC-RANSAC) algorithm, which appends strong constraints in azimuth direction and weak constraints in range direction. Matching points in the lower pyramid images are predicted with the local bilinear transformation model in range direction. Experiments performed on ENVISAT ASAR and Chinese airborne SAR images validated the efficiency, correct ratio and accuracy of the proposed method.
机译:在大型合成孔径雷达(SAR)图像上自动提取联络点(TP)仍然具有挑战性,因为需要提高图像匹配的效率和正确比例。针对从近似平行轨迹获得的大尺寸SAR图像,提出了一种基于差分约束的自动TPs提取方法,其间相对几何畸变在方位角方向上较小,而在距离方向上较大。首先构建图像金字塔,然后从顶部到底部匹配金字塔的相应层。在此过程中,相似度是通过归一化互相关(NCC)算法测量的,该算法是从长边与方位方向平行的矩形窗口中计算出来的。差分匹配通过差分约束随机样本共识(DC-RANSAC)算法消除,该算法在方位角方向上附加了强约束,而在距离方向上附加了弱约束。使用范围范围内的局部双线性变换模型预测下部金字塔图像中的匹配点。在ENVISAT ASAR和中国机载SAR图像上进行的实验验证了该方法的效率,正确比例和准确性。

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