A Triple-Branch Hybrid Attention Network With Bitemporal Feature Joint Refinement for Remote-Sensing Image Semantic Change Detection
Hao Chang, Peijin Wang, Wenhui Diao, Guangluan Xu, Xian Sun
Chinese Academy of Sciences Aerospace Information Research Institute University of Chinese Academy of Sciences
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摘要与影响
Compared with binary change detection (BCD), semantic change detection (SCD) further provides the category information of bitemporal changed regions which is significant for the practical application of Earth Observation. Although the recently proposed triple-branch structures including one BCD branch and two classification branches can effectively achieve the task balance, they still need to employ the carefully designed difference extraction module and branch interactions to capture the bitemporal correlations, which increases the complexity of the semantic information utilization. In this paper, we propose a new triple-branch network named JFRNet to tackle this challenge. From the perspective of the SCD process, because the category information and the change information are both derived from bitemporal images, we take the joint bitemporal features as the unified input, which can help each branch perceive the bitemporal semantic correlations without any additional interaction operations. From the perspective of the SCD structure, we introduce the convolutional attention fusion module (CAFM) and the convolutional attention refinement module (CARM) to unify the branch structure, which can help our model refine the unique semantic information without any specially designed difference extraction modules. Extensive experiment results on three available datasets indicate that compared with the baseline methods, our proposed JFRNet successfully simplifies the reasoning process and obtains the better SCD performance.
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工程Remote-Sensing Image Classification
Remote Sensing and Land Use · Remote Sensing in Agriculture
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