Multitask Siamese Network Guided by Enhanced Change Information for Semantic Change Detection in Bitemporal Remote Sensing Images

被引:1
|
作者
Zuo, Xibing [1 ]
Jin, Fei [1 ]
Ding, Lei [1 ]
Wang, Shuxiang [1 ]
Lin, Yuzhun [1 ]
Liu, Bing [1 ]
Ding, Yao [2 ]
机构
[1] Informat Engn Univ, Zhengzhou 450001, Peoples R China
[2] Xian Res Inst High Technol, Sch Opt Engn, Xian 710025, Peoples R China
基金
中国国家自然科学基金;
关键词
Feature extraction; Semantics; Multitasking; Training; Remote sensing; Periodic structures; Vectors; Head; Data mining; Attention mechanisms; Change information enhancement; change information guidance; multitask learning; remote sensing; semantic change detection (SCD);
D O I
10.1109/JSTARS.2024.3487137
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Semantic change detection (SCD) represents a challenging task in the interpretation of remote sensing images (RSIs), with the goal of identifying change regions and extracting semantic information from bitemporal RSIs simultaneously. The recent integration of deep neural networks leveraging multitask learning has shown promise in enhancing SCD performance. However, there is still a challenge in improving SCD performance, specifically in designing a fine-grained network structure that can handle the two subtasks of change region localization and semantic information recognition in parallel. In this context, a novel multitask Siamese network, termed EGMS-Net, is proposed to boost the performance of SCD, which consists of three core components. First, a coarse-to-fine multitask Siamese network is constructed to obtain semantic information and change information at multiple levels. Second, an adaptive change information enhancement method based on spatial-spectral collaborative attention mechanism is proposed, which can assist the accurate localization of change regions without significantly increasing the model parameters. Third, a change information guidance module is developed to strengthen the interaction between multitask branches and reduce the difficulty of network training. Experiments on three benchmark datasets demonstrate that the proposed EGMS-Net outperforms existing state-of-the-art methods in the SCD community.
引用
收藏
页码:61 / 77
页数:17
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