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Simulation of regional winter wheat yield by combining epic model and remotely sensed LAI based on global optimization algorithm

机译:基于全局优化算法的史诗模型与遥感LAI相结合的区域冬小麦产量模拟

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In recent years, combining spatial and timely remote sensing data and crop growth model is an important way to improve accuracy of crop growth simulation and crop growth monitoring. In this paper, global optimization algorithm SCE-UA (Shuffled Complex Evolution method - University of Arizona) was used to integrate remotely sensed leaf area index (LAI) with EPIC crop growth model to simulate regional winter wheat yield and other field management information such as sowing date, plant density and net nitrogen fertilizer application rate in Huanghuaihai Plain in China. Final results showed that average relative error of estimated winter wheat yield was 1.81% and RMSE was 0.208 t/ha. Compared with the actual observation data, average relative error of simulated plant density and net nitrogen fertilization application rate was −7.95% and −8.88% respectively and absolute error of simulated sowing date was only 1 day. These above accuracy of simulated results could meet requirements of crop monitoring at regional scale. It was proved that integrating remotely sensed LAI with EPIC model based on SCE-UA for simulation of crop growth condition and crop yield was feasible.
机译:近年来,将空间和及时的遥感数据与作物生长模型相结合是提高作物生长模拟和作物生长监测准确性的重要途径。本文使用全局优化算法SCE-UA(混洗的复杂演化方法-亚利桑那大学)将遥感叶面积指数(LAI)与EPIC作物生长模型相集成,以模拟区域冬小麦产量和其他田间管理信息,例如黄淮海平原播期,植物密度和氮肥净施用量最终结果表明,估计冬小麦单产的平均相对误差为1.81%,RMSE为0.208吨/公顷。与实际观测数据相比,模拟植物密度和净氮肥施用量的平均相对误差分别为-7.95%和-8.88%,模拟播种期的绝对误差仅为1天。以上模拟结果的准确性可以满足区域范围内作物监测的要求。实践证明,将遥感LAI与基于SCE-UA的EPIC模型集成,用于模拟作物生长状况和产量是可行的。

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