用生成模型夜间补全卫星可见光数据,提升天气监测连续性。
Lighting the Night with Generative Artificial Intelligence
- 基于热红外数据,用扩散模型生成夜间可见光反射率。
- 生成结果SSIM达0.90,复杂云区效果尤其出色。
- 可为夜间气象分析提供可靠数据,适合气象与遥感研究者。
地球静止卫星的可见光反射率数据对气象观测至关重要,但夜间缺乏可见光导致无法实现全天候监测。本研究首次采用生成扩散模型解决该问题,基于风云四号B星(FY4B)搭载的先进地球静止辐射成像仪(AGRI)多波段热红外亮温数据,构建高精度可见光反射率生成模型RefDiff,实现0.47~μm、0.65~μm和0.825~μm波段夜间反射率生成。相比传统方法,RefDiff通过集成平均显著提升精度,并提供不确定性估计。其结构相似性(SSIM)达到0.90,在复杂云结构及厚云区域表现尤为突出。利用维也纳夜间产品(VIIRS)验证,夜间生成性能接近白天水平。该研究大幅提升了夜间可见光反射率生成能力,拓展了夜间可见光数据的应用潜力。
原文摘要 · Abstract (English)
The visible light reflectance data from geostationary satellites is crucial for meteorological observations and plays an important role in weather monitoring and forecasting. However, due to the lack of visible light at night, it is impossible to conduct continuous all-day weather observations using visible light reflectance data. This study pioneers the use of generative diffusion models to address this limitation. Based on the multi-band thermal infrared brightness temperature data from the Advanced Geostationary Radiation Imager (AGRI) onboard the Fengyun-4B (FY4B) geostationary satellite, we developed a high-precision visible light reflectance generative model, called Reflectance Diffusion (RefDiff), which enables 0.47~μ\mathrm{m}, 0.65~μ\mathrm{m}, and 0.825~μ\mathrm{m} bands visible light reflectance generation at night. Compared to the classical models, RefDiff not only significantly improves accuracy through ensemble averaging but also provides uncertainty estimation. Specifically, the SSIM index of RefDiff can reach 0.90, with particularly significant improvements in areas with complex cloud structures and thick clouds. The model's nighttime generation capability was validated using VIIRS nighttime product, demonstrating comparable performance to its daytime counterpart. In summary, this research has made substantial progress in the ability to generate visible light reflectance at night, with the potential to expand the application of nighttime visible light data.
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