Semantic image segmentation network based on deep learning

Bo Chen, Jiahao Zhang, Jianbang Zhou, Zhong Chen, Jian Yang, Yanna Zhang
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引用次数: 2

Abstract

Semantic segmentation is one of the basic themes in computer vision. Its purpose is to assign semantic tags to each pixel of an image, which has been applied in many fields such as medical field, intelligent transportation and remote sensing image. In this paper, we use deep learning to solve the task of remote sensing semantic image segmentation. We propose an algorithm for semantic segmentation of the Attention Seg-Net network combined with SegNet and attention gate. Our proposed network can better segment vegetation, buildings, water bodies and roads in the test set of remote sensing images.
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基于深度学习的语义图像分割网络
语义分割是计算机视觉中的一个基本主题。它的目的是为图像的每个像素分配语义标签,在医疗领域、智能交通和遥感图像等许多领域都有应用。在本文中,我们使用深度学习来解决遥感语义图像分割的任务。提出了一种将SegNet和注意门相结合的注意力隔离网语义分割算法。我们提出的网络可以更好地分割遥感图像测试集中的植被、建筑物、水体和道路。
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