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Estimation of Maize Yield in Yitong County based on Multi-source Remote Sensing Data from 2007 to 2017

机译:基于多源遥感数据的2007年至2017年伊通县玉米单产估算

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With the development of remote sensing technology, the utilizations of multi-spatial and multispectral resolution remote images have proved to be very important in monitoring the growth and estimating the yield of agricultural crops. The light energy utilization models using remote sensing have got the wide application because of its simple data acquisition, less parameters and capabilities for time series analysis. In this research, the yield estimation has been carried out using the net primary productivity (NPP) and the contents of soil organic matter which are obtained by Carnegie-Ames-Stanford approach (CASA) model and our proposed approach respectively. More specifically, NPP of maize in the study area from 2007 to 2017 was estimated using CASA model, and the characters of spatio-temporal variation were explored. After that, the retrieval model of the soil organic matter content was established based on the relationship analyzation between the soil organic content and NPP. The characters of spatio-temporal variation also have been explored. Then the yield of spring maize in Yitong County from 2007 to 2017 was estimated using an improved yield estimation model. Moreover, the maize harvest index and the yield of maize per unit area in the study area were obtained. Finally, the growth and development information of maize in Yitong County were comprehensively evaluated combining with these mentioned data.
机译:随着遥感技术的发展,利用多空间和多光谱分辨率的遥感图像已被证明对于监测农作物的生长和估计其产量非常重要。使用遥感的光能利用模型由于其简单的数据采集,较少的参数和时间序列分析功能而得到了广泛的应用。在这项研究中,使用卡内基-埃姆斯-斯坦福方法(CASA)模型和我们提出的方法分别获得的净初级生产力(NPP)和土壤有机质含量进行了产量估算。更具体地说,使用CASA模型估算了研究区2007年至2017年玉米的NPP,并探讨了时空变化的特征。在此基础上,通过对土壤有机质含量与NPP的关系分析,建立了土壤有机质含量的反演模型。还探讨了时空变化的特征。然后,使用改进的产量估算模型估算了伊通县2007年至2017年的春玉米单产。此外,获得了研究区域内玉米收获指数和单位面积玉米产量。最后,结合上述数据对伊通县玉米的生长发育信息进行了综合评价。

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