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RepCPSI: Coordinate-Preserving Proximity Spectral Interaction Network With Reparameterization for Lightweight Spectral Super-Resolution

计算机科学 背景(考古学) 块(置换群论) 架空(工程) 残余物 推论 足迹 计算 算法 分布式计算 人工智能 数学 古生物学 几何学 生物 操作系统
作者
Chaoxiong Wu,Jiaojiao Li,Rui Song,Yunsong Li,Qian Du
出处
期刊:IEEE Transactions on Geoscience and Remote Sensing [Institute of Electrical and Electronics Engineers]
卷期号:61: 1-13 被引量:2
标识
DOI:10.1109/tgrs.2023.3264675
摘要

Existing remarkable models for spectral super-resolution (SSR) achieve higher precision at the expense of computations with larger parameters. These algorithms require the heavy memory footprint and sufficient computing power, limiting their practical deployments and applications on portable devices. In this paper, we propose an efficient re-parameterizing coordinate-preserving proximity spectral interaction (RepCPSI) network for lightweight SSR. Specifically, the basic architecture is constituted of several polymorphic residual context restructuring (PRCR) modules to fully explore spatial and spectral contextual information with a multi-branch topology during the training stage. Using a structural re-parameterization scheme, the training-completed network is converted equivalently to a high-efficiency inference-time model, when it runs in the testing phase. To significantly improve the accuracy of SSR with an extra negligible computational overhead, a lightweight coordinate-preserving proximity spectral-aware attention (CPSA) block is developed. Such CPSA block can adaptively emphasize informative signatures and suppress useless ones among intermediate spatial-spectral features, which effectively enables the model to quickly locate features that are beneficial to the network learning and representation. Furthermore, considering the continuity of spectral variation for capturing real-world HSIs, a spectral physical consistency loss (SPCL) is added to the end-to-end network to constrain the changing trend of the spectral curve to be consistent with the ground-truth objects. Finally, our RepCPSI can accomplish a favorable balance between the reconstructed quality and model complexity. Extensive experimental results on six benchmarks demonstrate that our method obtains excellent performance with fewer parameters in terms of quantitative and qualitative measurements over the current advanced SSR approaches.
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