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End-to-End DSM Fusion Networks for Semantic Segmentation in High-Resolution Aerial Images

机译:端到端DSM融合网络用于高分辨率航空影像中的语义分割

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摘要

Semantic segmentation in high-resolution aerial images is a fundamental research problem in remote sensing field for its wide range of applications. However, it is difficult to distinguish regions with similar spectral features using only multispectral data. Recent research studies have indicated that the introduction of multisource information can effectively improve the robustness of segmentation method. In this letter, we use digital surface models (DSMs) information as a complementary feature to further improve the semantic segmentation results. To this end, we propose a lightweight and simple DSM fusion (DSMF) branch structure module. Compared with the existing feature extraction structures, proposed DSMF module is simple and can be easily applied to other networks. In addition, we investigate four fusion strategies based on DSMF module to explore the optimal feature fusion strategy and four end-to-end DSMFNets are designed according to the corresponding strategies. We evaluate our models on International Society for Photogrammetry and Remote Sensing Vaihingen data set and all DSMFNets achieve promising results. In particular, DSMFNet-1 achieves an overall accuracy of 91.5 & x0025; on the test data set.
机译:高分辨率航空图像中的语义分割由于其广泛的应用是遥感领域的基础研究问题。但是,仅使用多光谱数据很难区分具有相似光谱特征的区域。最近的研究表明,引入多源信息可以有效地提高分割方法的鲁棒性。在这封信中,我们将数字表面模型(DSM)信息用作补充功能,以进一步改善语义分割结果。为此,我们提出了一种轻量且简单的DSM融合(DSMF)分支结构模块。与现有特征提取结构相比,所提出的DSMF模块简单易行,可以轻松应用于其他网络。此外,我们研究了基于DSMF模块的四种融合策略以探索最佳特征融合策略,并根据相应策略设计了四个端到端DSMFNet。我们在国际摄影测量和遥感Vaihingen数据集上评估了我们的模型,所有DSMFNet均取得了可喜的结果。特别是,DSMFNet-1的总体精度为91.5&x0025;在测试数据集上。

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