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An Image Matching Algorithm Integrating Global SRTM and Image Segmentation for Multi-Source Satellite Imagery

机译:集成全局SRTM和图像分割的多源卫星图像匹配算法

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This paper presents a novel image matching method for multi-source satellite images, which integrates global Shuttle Radar Topography Mission (SRTM) data and image segmentation to achieve robust and numerous correspondences. This method first generates the epipolar lines as a geometric constraint assisted by global SRTM data, after which the seed points are selected and matched. To produce more reliable matching results, a region segmentation-based matching propagation is proposed in this paper, whereby the region segmentations are extracted by image segmentation and are considered to be a spatial constraint. Moreover, a similarity measure integrating Distance, Angle and Normalized Cross-Correlation (DANCC), which considers geometric similarity and radiometric similarity, is introduced to find the optimal correspondences. Experiments using typical satellite images acquired from Resources Satellite-3 (ZY-3), Mapping Satellite-1, SPOT-5 and Google Earth demonstrated that the proposed method is able to produce reliable and accurate matching results.
机译:本文提出了一种用于多源卫星图像的新颖图像匹配方法,该方法将全球航天飞机雷达地形任务(SRTM)数据与图像分割相结合,以实现鲁棒且众多的对应关系。此方法首先通过全局SRTM数据辅助生成对极线作为几何约束,然后选择并匹配种子点。为了产生更可靠的匹配结果,本文提出了一种基于区域分割的匹配传播方法,该方法通过图像分割提取区域分割,并将其视为空间约束。此外,引入了一种综合了距离,角度和归一化互相关(DANCC)的相似性度量,该度量考虑了几何相似性和辐射相似性,以找到最佳对应性。使用从资源卫星3(ZY-3),制图卫星1,SPOT-5和Google地球获取的典型卫星图像进行的实验表明,该方法能够产生可靠且准确的匹配结果。

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