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Modeling of Runoff in the Arid Regions Using Remote Sensing and Geographic Information System (GIS)

机译:利用遥感和地理信息系统建模在干旱地区径流(GIS)

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摘要

One of the most important challenges in the field of engineering hydrology and water resources management, especially in arid regions such as the Iraqi Western Desert, is the process of predicting and quantifying the surface runoff. The limited available data about rainfall, runoff, soil properties, evaporation, and the lack of metrological stations make the process of predicting and calculating surface runoff a very difficult task. Modern technology can help with the purpose of compensating for the shortage of data and providing the information necessary to estimate the runoff and develop the system of water resources management in the region. The present study develops a model to determine the infiltration of soil from spectral reflectance using Artificial Neural Networks (ANN) integrated with a geographic information system (GIS) and remote sensing (RS). Field infiltration measurements for 105 soil samples in the Al-Ratga catchment area in the Iraqi western desert are achieved. The performance of the developed model was assessed both qualitatively and quantitatively (effective runoff depth) by comparing the results of actual and estimated basic infiltration rate values for each sample. The results refer to a good agreement between estimated and measured infiltration (R~2=0.768). The developed model predicts the runoff depending on the water balance equation and the results refer to good agreement with the SCS-CN model that is one of the most widely used in this region.
机译:工程水文和水资源管理领域最重要的挑战之一,特别是在伊拉克西部沙漠等干旱地区,是预测和量化表面径流的过程。有关降雨,径流,土壤性质,蒸发和缺乏计量站的有限可用数据使得预测和计算表面径流的过程非常艰巨的任务。现代技术可以帮助补偿数据短缺,并提供估算径流所需的信息,并在该地区开发水资源管理系统。本研究开发了一种模型,用于使用与地理信息系统(GIS)集成的人工神经网络(ANN)和遥感(RS)集成的人工神经网络(ANN)来确定土壤的渗透。达到伊拉克西部沙漠中Al-Ratga集水区105种土样品的现场渗透测量。通过比较每个样品的实际和估计的基本渗透率值的结果来评估所开发模型的性能和定量(有效的径流深度)。结果指估计和测量渗透之间的良好一致性(R〜2 = 0.768)。开发的模型根据水平衡方程预测径流,结果是指与该区域中最广泛使用的SCS-CN模型的良好协议。

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