HSIGene: A Foundation Model for Hyperspectral Image Generation

高光谱成像 计算机科学 人工智能 忠诚 RGB颜色模型 可靠性(半导体) 计算机视觉 模式识别(心理学) 图像分辨率 像素 图像(数学) 空间分析 数据建模 极限(数学) 降噪 特征(语言学) 机器学习 遥感 传感器融合 限制 高保真 数据挖掘 图像分割 图像处理
作者
Pang Li,Xiangyong Cao,Datao Tang,Shuang Xu,Xueru Bai,Feng Zhou,Deyu Meng
出处
期刊:IEEE Transactions on Pattern Analysis and Machine Intelligence [IEEE Computer Society]
卷期号:48 (1): 730-746 被引量:5
标识
DOI:10.1109/tpami.2025.3610927
摘要

Hyperspectral image (HSI) plays a vital role in various fields such as agriculture and environmental monitoring. However, due to the expensive acquisition cost, the number of hyperspectral images is limited, degenerating the performance of downstream tasks. Although some recent studies have attempted to employ diffusion models to synthesize HSIs, they still struggle with the scarcity of HSIs, affecting the reliability and diversity of the generated images. Some studies propose to incorporate multi-modal data to enhance spatial diversity, but spectral fidelity cannot be ensured. In addition, existing HSI synthesis models are typically uncontrollable or only support single-condition control, limiting their ability to generate accurate and reliable HSIs. To alleviate these issues, we propose HSIGene, a novel HSI generation foundation model which is based on latent diffusion and supports multi-condition control, allowing for more precise and reliable HSI generation. To enhance the spatial diversity of the training data while preserving spectral fidelity, we propose a new data augmentation method based on spatial super-resolution, in which HSIs are upscaled first, and thus abundant training patches could be obtained by cropping the high-resolution HSIs. In addition, to improve the perceptual quality of the augmented data, we introduce a novel two-stage HSI super-resolution framework, which first applies RGB bands super-resolution and then utilizes our proposed Rectangular Guided Attention Network (RGAN) for guided HSI super-resolution. Experiments demonstrate that the proposed model is capable of generating a vast quantity of realistic HSIs for downstream tasks such as denoising and super-resolution.
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