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Toward Precision in Crop Yield Estimation Using Remote Sensing and Optimization Techniques

机译:利用遥感和最优化技术提高作物产量的精度

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摘要

Many crop yield estimation techniques are being used, however the most effective one is based on using geospatial data and technologies such as remote sensing. However, the remote sensing data which are needed to estimate crop yield are insufficient most of the time due to many problems such as climate conditions (% of clouds), and low temporal resolution. There have been many attempts to solve the lack of data problem using very high temporal and very low spatial resolution images such as Modis. Although this type of image can compensate for the lack of data due to climate problems, they are only suitable for very large homogeneous crop fields. To compensate for the lack of high spatial resolution remote sensing images due to climate conditions, a new optimization model was created. Crop yield estimation is improved and its precision is increased based on the new model that includes the use of the energy balance equation. To verify the results of the crop yield estimation based on the new model, information from local farmers about their potato crop yields for the same year were collected. The comparison between the estimated crop yields and the actual production in different fields proves the efficiency of the new optimization model.
机译:目前正在使用许多作物单产估算技术,但是最有效的一种是基于使用地理空间数据和诸如遥感的技术。然而,由于许多问题,例如气候条件(云的百分比)和低时间分辨率,估计作物产量所需的遥感数据在大多数时间是不够的。已经进行了许多尝试来使用非常高的时间分辨率和非常低的空间分辨率图像(例如Modis)来解决数据不足的问题。尽管这种类型的图像可以弥补由于气候问题而导致的数据不足,但它们仅适用于非常大的均质作物田。为了补偿由于气候条件而缺乏高分辨率的遥感影像,创建了一个新的优化模型。基于新模型(包括使用能量平衡方程式),改进了作物产量估算并提高了其精度。为了验证基于新模型的作物产量估算结果,收集了当地农民有关其当年马铃薯产量的信息。将不同领域的估计作物产量与实际产量进行比较,证明了新优化模型的有效性。

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