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首页> 外文期刊>Advances in Meteorology >Development and Assessment of the Sand Dust Prediction Model by Utilizing Microwave-Based Satellite Soil Moisture and Reanalysis Datasets in East Asian Desert Areas
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Development and Assessment of the Sand Dust Prediction Model by Utilizing Microwave-Based Satellite Soil Moisture and Reanalysis Datasets in East Asian Desert Areas

机译:利用亚洲沙漠地区微波卫星土壤水分和再分析数据集的开发与评估沙尘预测模型

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摘要

For several decades, satellite-based microwave sensors have provided valuable soil moisture monitoring in various surface conditions. We have first developed a modeled aerosol optical depth (AOD) dataset by utilizing Soil Moisture and Ocean Salinity (SMOS), Advanced Microwave Scanning Radiometer 2 (AMSR2), and the Global Land Data Assimilation System (GLDAS) soil moisture datasets in order to estimate dust outbreaks over desert areas of East Asia. Moderate Resolution Imaging Spectroradiometer- (MODIS-) based AOD products were used as reference datasets to validate the modeled AOD (MA). The SMOS-based MA (SMOS-MA) dataset showed good correspondence with observed AOD (R-value: 0.56) compared to AMSR2- and GLDAS-basedMAdatasets, and it overestimated AOD compared to observed AOD. The AMSR2-basedMA dataset was found to underestimate AOD, and it showed a relatively low R-value (0.35) with respect to observed AOD. Furthermore, SMOS-MA products were able to simulate the short-term AOD trends, having a high R-value (0.65).The results of this study may allow us to acknowledge the utilization of microwave-based soil moisture datasets for investigation of near-real time dust outbreak predictions and short-term dust outbreak trend analysis.
机译:几十年来,卫星的微波传感器在各种表面条件下提供了有价值的土壤水分监测。我们首先通过利用土壤水分和海洋盐度(SMOS),先进的微波扫描辐射计2(AMSR2)和全球土地数据同化系统(GLDAS)土壤水分数据集来开发模型的气溶胶光学深度(AOD)数据集以估计在东亚沙漠地区的尘埃爆发。基于适量的基于AOD产品的适度分辨率成像光谱仪 - (MODIS-)用作参考数据集以验证建模AOD(MA)。与AMSR2和GLDAS-adaTasets相比,基于SMOS的MA(SMOS-MA)数据集与观察到的AOD(R值:0.56)显示出良好的对应关系,并且与观察到的AOD相比,它高估了AOD。发现AMSR2基数数据集低估AOD,并且它相对于观察到的AOD显示了相对低的R值(0.35)。此外,SMOS-MA产品能够模拟具有高R值(0.65)的短期AOD趋势。本研究的结果可能允许我们承认利用微波的土壤水分数据集进行近的调查 - 爆炸时间粉尘爆发预测和短期粉尘爆发趋势分析。

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