• 简要介绍了人工神经网络用于洪水预报基本原理,对降雨径流预报网络模型进行了改进

    This article presents the principle of ANN briefly in the application of flood forecast and an improved network algorithm of rainfall runoff forecasting.

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  • 中期模型优化时间跨度等于中期入库径流预报预见3-7),优化时段

    The time span of middle-term optimization model equal foreseeable period of runoff forecasting (3 to 7 days), and the optimization period is one day.

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  • 这说明运用马尔可模型进行径流丰枯状态预报有效可行的。

    So, it is practical to use the sequential clustering and Markov model to forecast the river runoff .

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  • 最小二乘回归神经网络耦合建立了径流预报模型

    Coupling partial least-squares regression and neural network in the article, the forecasting model of the quantity of runoff is established.

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  • 建立GM1,1)灰色拓扑模型通过结论分析表明模型径流预报较为理想方法

    Setting up GM(1,1) grey topological model groups and through analyzing conclusion, it indicates that such model is a kind of comparatively ideal method in predicting annual surface flow.

    youdao

  • 建立GM1,1)灰色拓扑模型通过结论分析表明模型径流预报较为理想方法

    Setting up GM(1,1) grey topological model groups and through analyzing conclusion, it indicates that such model is a kind of comparatively ideal method in predicting annual surface flow.

    youdao

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