基于门控金字塔融合的遥感影像海陆分割方法
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中国石油大学(华东)海洋与空间信息学院 青岛 266580

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TP2

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国家自然科学基金(62071491)、中央高校基本科研业务费专项资金(22CX01004A-1)项目资助


Sea-land segmentation method of remote sensing images based on gated pyramid fusion
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College of Oceanography and Space Informatics,China University of Petroleum (East China),Qingdao 266580, China

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    摘要:

    海陆分割是通过遥感影像进行海岸线变化分析、资源管理等应用的重要基础,由于遥感影像场景复杂、陆地大小形状分布不均,海陆分割面临着误分类和边界分割不清等问题。针对上述问题,提出了一种用于遥感影像海陆分割的门控金字塔融合网络。首先通过基于注意力诱导的跨层聚合模块聚合两个深层特征,捕获全局上下文,准确而粗略地获取陆地的大小和形状信息。然后将聚合的全局特征送入门控融合模块,以全局信息为指导,在多尺度特征中选择有用的上下文信息,逐层优化边界细节并突出整个陆地区域。最后对每个侧输出进行全局监督。选取两组不同数据源的遥感影像进行实验,准确率分别为9913%和9898%,F1分数分别为9903%和9889%,mIoU分别为9826%和9797%。实验结果表明,与其他算法相比,该算法具有更好的分割效果。

    Abstract:

    Sea-land segmentation is an important basis for the application of remote sensing images, such as coastline change analysis and resource management. Due to the complex scene of remote sensing images and uneven distribution of land size and shape, sealand segmentation is faced with problems such as misclassification and unclear boundary segmentation. Aiming at the above problems, proposes a gated pyramid fusion network for sealand segmentation in remote sensing images. Firstly, two deep features are aggregated through the attentioninduced crosslayer aggregation module to capture the global context and accurately and roughly obtain the size and shape information of the land. Then, the aggregated global features are sent to the gated fusion module, guided by the global information, useful context information is selected from the multiscale features, optimizes boundary details layer by layer and highlights the entire land area. Finally, global supervision is performed on each side output. Two sets of remote sensing images from different data sources were selected for experiments, the accuracy was 99.13% and 98.98%, the F1 score was 99.03% and 98.89%, and the mIoU was 98.26% and 9797%, respectively. Experimental results show that this algorithm has better segmentation effect than other algorithms.

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李忠伟,王晓政,罗偲,刘旭阳,郭洪升.基于门控金字塔融合的遥感影像海陆分割方法[J].电子测量技术,2023,46(15):111-117

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  • 在线发布日期: 2024-01-08
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