End-to-End Hyperspectral Image Change Detection Based on Band Selection
Yao, Qingren, Zhou, Yuan, Tang, Chang, Xiang, Wei, and Zheng, Gang (2024) End-to-End Hyperspectral Image Change Detection Based on Band Selection. IEEE Transactions on Geoscience and Remote Sensing, 62. 5617614.
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Abstract
Change detection (CD) aims to identify differences in the same scene at different times. With the increasing amount of hyperspectral images (HSIs), more and more CD techniques use HSIs as the raw data. HSIs often contain redundant bands, where only a few are crucial for CD while others may be detrimental. However, most existing HSI-CD methods extract features directly from full-dimensional HSIs, leading to a degradation of feature discrimination. To tackle this issue, in this article, we propose an end-to-end HSI CD network based on band selection (ECDBS), unlocking the potential synergy between band selection (BS) and CD. The network compromises a deep learning-based BS module and cascaded band-specific spatial attention (BSA) blocks. The BS module selectively retains bands favorable to CD according to the importance of the bands measured based on band correlation. The BSA block tailors the feature extraction strategy for each band based on its feature distribution, allowing extracting sufficient features from each band. Experimental evaluations were conducted on three widely used HSI-CD datasets, demonstrating the effectiveness and superiority of our proposed method over other state-of-the-art techniques.
| Item ID: | 87519 |
|---|---|
| Item Type: | Article (Research - C1) |
| ISSN: | 1558-0644 |
| Keywords: | Attention mechanism, band selection (BS), change detection (CD), deep learning, hyperspectral images (HSIs) |
| Copyright Information: | © 2024 IEEE. |
| Date Deposited: | 09 Dec 2025 23:48 |
| FoR Codes: | 46 INFORMATION AND COMPUTING SCIENCES > 4611 Machine learning > 461103 Deep learning @ 50% 46 INFORMATION AND COMPUTING SCIENCES > 4601 Applied computing > 460106 Spatial data and applications @ 50% |
| SEO Codes: | 22 INFORMATION AND COMMUNICATION SERVICES > 2204 Information systems, technologies and services > 220402 Applied computing @ 100% |
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