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Monitoring cotton root rot by synthetic Sentinel-2 NDVI time series using improved spatial and temporal data fusion

机译:利用改进的时空数据融合技术通过合成Sentinel-2 NDVI时间序列监测棉花根腐病

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摘要

To better understand the progression of cotton root rot within the season, time series monitoring is required. In this study, an improved spatial and temporal data fusion approach (ISTDFA) was employed to combine 250-m Moderate Resolution Imaging Spectroradiometer (MODIS) Normalized Different Vegetation Index (NDVI) and 10-m Sentinetl-2 NDVI data to generate a synthetic Sentinel-2 NDVI time series for monitoring this disease. Then, the phenology of healthy cotton and infected cotton was modeled using a logistic model. Finally, several phenology parameters, including the onset day of greenness minimum (OGM), growing season length (GLS), onset of greenness increase (OGI), max NDVI value, and integral area of the phenology curve, were calculated. The results showed that ISTDFA could be used to combine time series MODIS and Sentinel-2 NDVI data with a correlation coefficient of 0.893. The logistic model could describe the phenology curves with R-squared values from 0.791 to 0.969. Moreover, the phenology curve of infected cotton showed a significant difference from that of healthy cotton. The max NDVI value, OGM, GSL and the integral area of the phenology curve for infected cotton were reduced by 0.045, 30 days, 22 days, and 18.54%, respectively, compared with those for healthy cotton.
机译:为了更好地了解季节内棉花根腐病的进展,需要进行时间序列监测。在这项研究中,采用了改进的时空数据融合方法(ISTDFA)来结合250-m中等分辨率成像光谱仪(MODIS)归一化不同植被指数(NDVI)和10-m Sentinetl-2 NDVI数据以生成合成前哨-2 NDVI时间序列,用于监测这种疾病。然后,使用逻辑模型对健康棉花和受感染棉花的物候进行建模。最后,计算了几个物候参数,包括最低绿度的开始日(OGM),生长季节长度(GLS),最高绿度开始(OGI),最大NDVI值和物候曲线的积分面积。结果表明,ISTDFA可用于组合时间序列MODIS和Sentinel-2 NDVI数据,相关系数为0.893。逻辑模型可以用从0.791到0.969的R平方值描述物候曲线。此外,被感染棉花的物候曲线显示出与健康棉花的显着差异。与健康棉花相比,受感染棉花的最大NDVI值,OGM,GSL和物候曲线的积分面积分别减少了0.045%,30天,22天和18.54%。

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