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Irrigation scheduling of tomato crop by combining Sentinel-2 imagery with an agro-hydrological model

机译:番茄作物与农业水文模型相结合番茄作物的调度

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This study explored the possibility to optimize irrigation scheduling through the integrated use of crop data derived from multispectral satellite imagery and an agro-hydrological model. The study was conducted with reference to an industrial tomato crop in an irrigated open field. Three methods for estimating irrigation needs were compared: estimates obtained with a calibrated AquaCrop model; estimates obtained by applying the AquaCrop model with sequential assimilation of crop cover retrieved from multispectral images; estimates obtained with the IRRISAT irrigation advisory service, based only crop state parameters retrieved from satellite multispectral images. The results confirm the usefulness of integrating agro-hydrological models and satellite observations to improve the prediction of crop water requirements. The agro-hydrological model offers more reliable estimates of the water irrigation requirements in the early stages of crop development, being able to simulate the effect of evaporative losses from the soil, when the canopy cover is still small. On the other hand, satellite data allows reducing model simulation errors in the most advanced stages of crop development and during senescence.
机译:本研究探讨了通过综合使用来自多光谱卫星图像和农业水文模型的作物数据的综合使用优化灌溉调度。该研究是参考灌溉开放领域的工业番茄作物进行。比较了三种估算灌溉需求的方法:用校准的Aquacrop模型获得的估计值;通过应用Aquacrop模型来获得的估计通过从多光谱图像检索的裁剪覆盖的顺序同化而获得的估计;利用Irrisat灌溉咨询服务获得的估计,仅基于从卫星多光谱图像检索的作物状态参数。结果证实了农业水文模型和卫星观测集成的有用性,以改善作物水需求的预测。农业水文模型在作物开发的早期阶段提供更可靠的水灌溉要求估算,能够模拟土壤蒸发损失的效果,当冠层盖仍然很小。另一方面,卫星数据允许在作物发展中最先进的阶段和衰老期间降低模型仿真误差。

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