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Research of flood prediction based on subjective/objective evidences fusion model

机译:基于主客观证据融合模型的洪水预报研究

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This paper presents a model by combining BP neural network and DS evidential reasoning, which not only achieves the feature level fusion of all subjective and objective evidences in various domains and layers, but also makes distinct models complement each other. By the experiment, this method improves classification precision by 7.9 percent and reduces the time complexity of algorithm. The model solves the problems such as high complexity of algorithms and low accuracy rate of classifications lie in the flood prediction using single models.
机译:本文通过结合BP神经网络和DS证据推理来介绍一种模型,这不仅达到了各个领域和层中所有主观和客观证据的特征级融合,而且还使得不同的模型相互补充。通过实验,该方法通过7.9%提高了分类精度,并降低了算法的时间复杂性。该模型解决了诸如算法的高复杂性和低精度分类率的问题在于使用单一型号的洪水预测。

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