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Flash flood forecasting using Support Vector Regression: An event clustering based approach

机译:使用支持向量回归的洪水预报:一种基于事件聚类的方法

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We present a new machine learning approach to flash flood forecasting in the absence of rainfall forecasts, based on the agglomerative hierarchical clustering of flood events. Each cluster contains events whose models have similar behaviors. Specific Support Vector Regression models are then trained from each cluster. The test results show that a specific model may be more accurate than a general model trained from all floods present in the training database.
机译:基于洪水事件的聚集层次聚类,我们提出了一种新的机器学习方法,用于在没有降雨预报的情况下进行山洪预报。每个群集都包含事件,这些事件的模型具有相似的行为。然后从每个群集中训练特定的支持向量回归模型。测试结果表明,特定模型可能比从训练数据库中存在的所有洪水中训练的一般模型更准确。

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