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Multi-path Fusion Network for High-Resolution Height Estimation from a Single Orthophoto

机译:多路径融合网络,可从单张正射影像进行高分辨率高度估计

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Height estimation from a single orthophoto is essential for reconstructing 3D scene models for navigation of unmanned aerial vehicles. It is particularly challenging to recover detailed object structures under various scales. In this paper, we propose a multi-path fusion network for generating high resolution height maps while preserving scene structures well. From multi-scale features that can be extracted by an efficient recursive refinement network, we introduce a multipath feature fusion module to combine these features and exploit information on different abstraction levels efficiently. We also design a residual up-sampling block to generate high-resolution height maps that well preserve structure details. Experimental results on two public datasets, Vaihingen and Potsdam, demonstrate that our method achieves better quantitative performance compared with previous techniques. Moreover, our results are much more visually pleasing because scene structures at different scales are well preserved.
机译:从单个正射影像估算高度对于重建用于无人机导航的3D场景模型至关重要。恢复各种规模的详细对象结构特别具有挑战性。在本文中,我们提出了一种多路径融合网络,用于在保持场景结构良好的同时生成高分辨率的高度图。从可以通过有效的递归细化网络提取的多尺度特征中,我们引入了多路径特征融合模块,以组合这些特征并有效地利用不同抽象级别上的信息。我们还设计了一个残余的向上采样块,以生成高分辨率的高度图,该高度图很好地保留了结构细节。在两个公共数据集Vaihingen和Potsdam上的实验结果表明,与以前的技术相比,我们的方法具有更好的定量性能。此外,我们的结果在视觉上更令人愉悦,因为可以很好地保留不同比例的场景结构。

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