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IMGTR: Image-triangle based multi-view 3D reconstruction for urban scenes

机译:IMGTR:基于图像三角形的城市场景的多视图3D重建

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摘要

Multi-view depth map reconstruction is a popular approach to generate 3D information with good flexibility and scalability. However, texture-weak regions and repeated textures challenge these methods in urban scenes. To address this need, this paper proposes an image-triangle based multi-view 3D reconstruction (IMGTR) method. Starting from constructing a density-adaptive image triangulation for each image, the main procedure is to determine the corresponding object plane for each image triangle under an objective function consisting of the image similarity measure, the smoothness constraint and the continuity constraint on the edges between adjacent triangles. Qualitative and quantitative experiments show that the proposed method can reconstruct complex urban structures more accurate and achieve higher fidelity in planar urban structures than some recently released multi-view stereo algorithms. Specifically, for the Vaihingen dataset IMGTR achieves an average improvement of 4.27% compared to PMVD, 50.94% to SURE and 54.76% to COLMAP in position accuracy.
机译:多视图深度地图重建是一种流行的方法,可以产生具有良好的灵活性和可扩展性的3D信息。然而,纹理弱区和重复纹理挑战了城市场景中的这些方法。为了解决这种需求,本文提出了一种基于图像三角形的多视图3D重建(IMGTR)方法。从构造每个图像的密度 - 自适应图像三角测量时,主过程是在由图像相似度测量,平滑度约束和相邻边缘之间的边缘上的平滑度约束和连续性约束之下来确定每个图像三角形的相应对象平面。三角形。定性和定量实验表明,该方法可以重建复杂的城市结构更准确并在平面城市结构中实现更高的保真度,而不是一些最近发布的多视图立体声算法。具体而言,对于Vaihingen数据集IMGTR,与PMVD,50.94%,肯定和54.76%的PMVD,肯定的水平准确度为54.76%,实现了4.27%的平均改善。

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