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Seamline network generation based on foreground segmentation for orthoimage mosaicking

机译:基于前景分割的接缝线网络正射影像镶嵌

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摘要

For multiple orthoimages mosaicking, the detection of an optimal seamline in an overlapped region and the generation of a seamline network are two key issues for creating a seamless and pleasant large-scale digital orthophoto map. In this paper, a novel system is proposed to generate the large-scale orthophoto by mosaicking multiple orthoimages via Graph cuts. The proposed system is comprised of two parts. In the first part, to ensure that the detected seamline avoids crossing the obvious objects, a novel foreground segmentation-based approach is proposed to detect the optimal seamline for two adjacent images. The foreground objects are segmented from the overlapped region at the superpixel level followed by the pixel-level seamline optimization. In the second part, we propose a novel seamline network generation approach to produce the large-scale orthophoto by mosaicking multiple orthoimages. The pairwise and junction regions extracted from the initial network are refined using two-label and multi-label Graph cuts, respectively. The key advantage of our proposed seamline network is that junction points can be automatically and optimally found using the multi-label Graph cuts. The experimental results on two groups of orthoimages show that our proposed system can generate high-quality seamline networks with less artifacts, and that it outperforms the state-of-the-art algorithm and the commercial software based on visual comparison and statistical evaluation.
机译:对于多个正射影像镶嵌,检测重叠区域中的最佳接缝线和生成接缝线网络是创建无缝且令人愉悦的大规模数字正射影像图的两个关键问题。在本文中,提出了一种新颖的系统,该系统通过使用图割来拼接多个正射影像来生成大规模正射影像。拟议的系统由两部分组成。在第一部分中,为了确保检测到的接缝避免穿过明显的物体,提出了一种基于前景分割的新颖方法来检测两个相邻图像的最佳接缝。从超像素级别的重叠区域中分割前景对象,然后进行像素级别的接缝线优化。在第二部分中,我们提出了一种新颖的接缝线网络生成方法,通过镶嵌多个正射影像来生成大规模正射影像。从初始网络中提取的成对区域和连接区域分别使用双标签和多标签图谱进行精修。我们提出的接缝线网络的主要优势在于,可以使用多标签Graph切口自动且最佳地找到接合点。在两组正射影像上的实验结果表明,我们提出的系统可以生成具有更少伪像的高质量接缝网络,并且其性能优于基于视觉比较和统计评估的最新算法和商业软件。

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