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Toward an optimal model based on inequality measures for treatment of historical real time flood's dataset

机译:建立基于不等式测度的最优模型,用于处理历史和实时洪水数据集

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Flood is always a problem that Morocco tries to overcome it, because of the climate. The climate in Morocco can be divided into five sub-areas, determined by the different influences that the country suffers: oceanic, Mediterranean, montagnard, continental and saharan that's why Flood forecasting becomes a challenge for Morocco. Flood forecasting and control the water flow and water level on the surface is very critical to reduce the impacts while the flood disaster events. The flood forecasting model requires the management of huge spatial datasets, which implies data acquisition, storage and processing, as well as manipulation, reporting and display results. Thus, to reach an excellent prediction in terms of accuracy, it's important to implement a model which be interested by manipulation of the historical datasets from the database in order to minimize the response time of the decision. In this paper, we present a new model for treatment and for comparison by using the GINI Coefficient and the Variance Coefficient in this model which has two access modes to handle historical inundations informations according to the rainfall, the runoff and the water level. The main idea is to use the Inequality Measures to compare the observed distribution with the reference distribution, in other words compare the several data received from the sensors with data already stored in the database to have an appropriate decision about flooding without going through the decision support system for Real Time Flood Forecasting and Warning.
机译:由于气候,洪水一直是摩洛哥试图克服的一个问题。摩洛哥的气候可分为五个子区域,这取决于该国遭受的不同影响:海洋,地中海,蒙塔格纳德,大陆和撒哈拉沙漠,这就是洪水预报成为摩洛哥挑战的原因。洪水预报和控制地表水流量和水位对于减少洪水灾害发生时的影响至关重要。洪水预报模型需要管理巨大的空间数据集,这意味着数据采集,存储和处理以及处理,报告和显示结果。因此,要在准确性方面获得出色的预测,重要的是要实现一个模型,该模型应通过操作数据库中的历史数据集来实现,以最大程度地减少决策的响应时间。在本文中,我们通过使用该模型中的GINI系数和方差系数,提出了一种用于处理和比较的新模型,该模型具有两种访问模式,可以根据降雨,径流和水位来处理历史淹​​没信息。主要思想是使用不平等度量将观察到的分布与参考分布进行比较,换句话说,将从传感器接收到的几个数据与已经存储在数据库中的数据进行比较,以对洪水进行适当的决策,而无需通过决策支持实时洪水预报和预警系统。

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