Sci-Net: scale-invariant model for buildings segmentation from aerial imagery

被引:0
|
作者
Hasan Nasrallah
Mustafa Shukor
Ali J. Ghandour
机构
[1] Lebanese University,CRSI, Faculty of Engineering
[2] Sorbonne University,undefined
[3] National Center for Remote Sensing - CNRS,undefined
来源
Signal, Image and Video Processing | 2023年 / 17卷
关键词
Scale-invariant; Urban remote sensing; Earth observation; Building segmentation;
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中图分类号
学科分类号
摘要
Buildings’ segmentation is a fundamental task in the field of earth observation and aerial imagery analysis. Most existing deep learning-based methods in the literature can be applied to a fixed or narrow-range spatial resolution imagery. In practical scenarios, users deal with a broad spectrum of image resolutions. Thus, a given aerial image often needs to be re-sampled to match the spatial resolution of the dataset used to train the deep learning model, which results in a degradation in segmentation performance. To overcome this challenge, we propose, in this manuscript, scale-invariant neural network (Sci-Net) architecture that segments buildings from wide-range spatial resolution aerial images. Specifically, our approach leverages UNet hierarchical representation and dense atrous spatial pyramid pooling to extract fine-grained multi-scale representations. Sci-Net significantly outperforms state-of-the-art models on the open cities AI and the multi-scale building datasets with a steady improvement margin across different spatial resolutions.
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页码:2999 / 3007
页数:8
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